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Zhao H, Wu D, Kong F, Lin K, Zhang H, Li G. The Arabidopsis thaliana Nuclear Factor Y Transcription Factors. FRONTIERS IN PLANT SCIENCE 2016; 7:2045. [PMID: 28119722 PMCID: PMC5222873 DOI: 10.3389/fpls.2016.02045] [Citation(s) in RCA: 111] [Impact Index Per Article: 12.3] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Received: 09/11/2016] [Accepted: 12/21/2016] [Indexed: 05/03/2023]
Abstract
Nuclear factor Y (NF-Y) is an evolutionarily conserved trimeric transcription factor complex present in nearly all eukaryotes. The heterotrimeric NF-Y complex consists of three subunits, NF-YA, NF-YB, and NF-YC, and binds to the CCAAT box in the promoter regions of its target genes to regulate their expression. Yeast and mammal genomes generally have single genes with multiple splicing isoforms that encode each NF-Y subunit. By contrast, plant genomes generally have multi-gene families encoding each subunit and these genes are differentially expressed in various tissues or stages. Therefore, different subunit combinations can lead to a wide variety of NF-Y complexes in various tissues, stages, and growth conditions, indicating the potentially diverse functions of this complex in plants. Indeed, many recent studies have proved that the NF-Y complex plays multiple essential roles in plant growth, development, and stress responses. In this review, we highlight recent progress on NF-Y in Arabidopsis thaliana, including NF-Y protein structure, heterotrimeric complex formation, and the molecular mechanism by which NF-Y regulates downstream target gene expression. We then focus on its biological functions and underlying molecular mechanisms. Finally, possible directions for future research on NF-Y are also presented.
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Rey T, Laporte P, Bonhomme M, Jardinaud MF, Huguet S, Balzergue S, Dumas B, Niebel A, Jacquet C. MtNF-YA1, A Central Transcriptional Regulator of Symbiotic Nodule Development, Is Also a Determinant of Medicago truncatula Susceptibility toward a Root Pathogen. FRONTIERS IN PLANT SCIENCE 2016; 7:1837. [PMID: 27994614 PMCID: PMC5137509 DOI: 10.3389/fpls.2016.01837] [Citation(s) in RCA: 17] [Impact Index Per Article: 1.9] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Received: 07/22/2016] [Accepted: 11/22/2016] [Indexed: 05/20/2023]
Abstract
Plant NF-Y transcription factors control a wide array of biological functions enabling appropriate reproductive and developmental processes as well as adaptation to various abiotic and biotic environments. In Medicago truncatula, MtNF-YA1 was previously identified as a key determinant for nodule development and establishment of rhizobial symbiosis. Here, we highlight a new role for this protein in compatibility to Aphanomyces euteiches, a root pathogenic oomycete. The Mtnf-ya1-1 mutant plants showed better survival rate, reduced symptoms, and increased development of their root apparatus as compared to their wild-type (WT) background A17. MtNF-YA-1 was specifically up-regulated by A. euteiches in F83005.5, a highly susceptible natural accession of M. truncatula while transcript level remained stable in A17, which is partially resistant. The role of MtNF-YA1 in F83005.5 susceptibility was further documented by reducing MtNF-YA1 expression either by overexpression of the miR169q, a microRNA targeting MtNF-YA1, or by RNAi approaches leading to a strong enhancement in the resistance of this susceptible line. Comparative analysis of the transcriptome of WT and Mtnf-ya1-1 led to the identification of 1509 differentially expressed genes. Among those, almost 36 defense-related genes were constitutively expressed in Mtnf-ya1-1, while 20 genes linked to hormonal pathways were repressed. In summary, we revealed an unexpected dual role for this symbiotic transcription factor as a key player in the compatibility mechanisms to a pathogen.
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Affiliation(s)
- Thomas Rey
- Laboratoire de Recherche en Sciences Végétales, Université de Toulouse, CNRS, UPSCastanet Tolosan, France
- *Correspondence: Thomas Rey,
| | - Philippe Laporte
- Institut National de la Recherche Agronomique, Laboratoire des Interactions Plantes-Microorganismes, UMR441Castanet-Tolosan, France
- Centre National de la Recherche Scientifique, Laboratoire des Interactions Plantes-Microorganismes, UMR2594Castanet-Tolosan, France
| | - Maxime Bonhomme
- Laboratoire de Recherche en Sciences Végétales, Université de Toulouse, CNRS, UPSCastanet Tolosan, France
| | - Marie-Françoise Jardinaud
- Institut National de la Recherche Agronomique, Laboratoire des Interactions Plantes-Microorganismes, UMR441Castanet-Tolosan, France
- Centre National de la Recherche Scientifique, Laboratoire des Interactions Plantes-Microorganismes, UMR2594Castanet-Tolosan, France
| | - Stéphanie Huguet
- POPS Transcriptomic Platform – Institute of Plant Sciences Paris-Saclay IPS2, Centre National de la Recherche Scientifique, Institut National de la Recherche Agronomique, Université Paris-Sud, Université d’Évry Val-d’Essonne, Université Paris Diderot, Sorbonne Paris-Cite, Universite Paris-SaclayOrsay, France
| | - Sandrine Balzergue
- POPS Transcriptomic Platform – Institute of Plant Sciences Paris-Saclay IPS2, Centre National de la Recherche Scientifique, Institut National de la Recherche Agronomique, Université Paris-Sud, Université d’Évry Val-d’Essonne, Université Paris Diderot, Sorbonne Paris-Cite, Universite Paris-SaclayOrsay, France
| | - Bernard Dumas
- Laboratoire de Recherche en Sciences Végétales, Université de Toulouse, CNRS, UPSCastanet Tolosan, France
| | - Andreas Niebel
- Institut National de la Recherche Agronomique, Laboratoire des Interactions Plantes-Microorganismes, UMR441Castanet-Tolosan, France
- Centre National de la Recherche Scientifique, Laboratoire des Interactions Plantes-Microorganismes, UMR2594Castanet-Tolosan, France
| | - Christophe Jacquet
- Laboratoire de Recherche en Sciences Végétales, Université de Toulouse, CNRS, UPSCastanet Tolosan, France
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203
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Adwy W, Laxa M, Peterhansel C. A simple mechanism for the establishment of C₂-specific gene expression in Brassicaceae. THE PLANT JOURNAL : FOR CELL AND MOLECULAR BIOLOGY 2015; 84:1231-1238. [PMID: 26603271 DOI: 10.1111/tpj.13084] [Citation(s) in RCA: 19] [Impact Index Per Article: 1.9] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 10/15/2015] [Accepted: 11/09/2015] [Indexed: 06/05/2023]
Abstract
The transition of C3 , via C2 towards C4 photosynthesis is an important example of stepwise evolution of a complex genetic trait. A common feature that was gradually emphasized during this trajectory is the evolution of a CO2 concentration mechanism around Rubisco. In C2 plants, this mechanism is based on tissue-specific accumulation of glycine decarboxylase (GDC) in bundle sheath (BS) cells, relative to global expression in the cells of C3 leaves. This limits photorespiratory CO2 release to BS cells. Because BS cells are surrounded by photosynthetically active mesophyll cells, this arrangement enhances the probability of re-fixation of CO2 . The restriction of GDC to BS cells was mainly achieved by confinement of its P-subunit (GLDP). Here, we provide a mechanism for the establishment of C2 -type gene expression by studying the upstream sequences of C3 Gldp genes in Arabidopsis thaliana. Deletion of 59 bp in the upstream region of AtGldp1 restricted expression of a reporter gene to BS cells and the vasculature without affecting diurnal variation. This region was named the 'M box'. Similar results were obtained for the AtGldp2 gene. Fusion of the M box to endogenous or exogenous promoters supported mesophyll expression. Nucleosome densities at the M box were low, suggesting an open chromatin structure facilitating transcription factor binding. In silico analysis defined a possible consensus for the element that was conserved across the Brassicaceae, but not in Moricandia nitens, a C2 plant. Collective results provide evidence that a simple mutation is sufficient for establishment of C2 -specific gene expression in a C3 plant.
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Affiliation(s)
- Waly Adwy
- Institut für Botanik, Leibniz Universität Hannover, Herrenhäuserstrasse 2, 30419, Hannover, Germany
- Department of Genetics, Cairo University, 13 Gamaa Street, 12619, Giza, Egypt
| | - Miriam Laxa
- Institut für Botanik, Leibniz Universität Hannover, Herrenhäuserstrasse 2, 30419, Hannover, Germany
| | - Christoph Peterhansel
- Institut für Botanik, Leibniz Universität Hannover, Herrenhäuserstrasse 2, 30419, Hannover, Germany
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204
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Baudin M, Laloum T, Lepage A, Rípodas C, Ariel F, Frances L, Crespi M, Gamas P, Blanco FA, Zanetti ME, de Carvalho-Niebel F, Niebel A. A Phylogenetically Conserved Group of Nuclear Factor-Y Transcription Factors Interact to Control Nodulation in Legumes. PLANT PHYSIOLOGY 2015; 169:2761-73. [PMID: 26432878 PMCID: PMC4677902 DOI: 10.1104/pp.15.01144] [Citation(s) in RCA: 12] [Impact Index Per Article: 1.2] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 07/22/2015] [Accepted: 09/30/2015] [Indexed: 05/03/2023]
Abstract
The endosymbiotic association between legumes and soil bacteria called rhizobia leads to the formation of a new root-derived organ called the nodule in which differentiated bacteria convert atmospheric nitrogen into a form that can be assimilated by the host plant. Successful root infection by rhizobia and nodule organogenesis require the activation of symbiotic genes that are controlled by a set of transcription factors (TFs). We recently identified Medicago truncatula nuclear factor-YA1 (MtNF-YA1) and MtNF-YA2 as two M. truncatula TFs playing a central role during key steps of the Sinorhizobium meliloti-M. truncatula symbiotic interaction. NF-YA TFs interact with NF-YB and NF-YC subunits to regulate target genes containing the CCAAT box consensus sequence. In this study, using a yeast two-hybrid screen approach, we identified the NF-YB and NF-YC subunits able to interact with MtNF-YA1 and MtNF-YA2. In yeast (Saccharomyces cerevisiae) and in planta, we further demonstrated by both coimmunoprecipitation and bimolecular fluorescence complementation that these NF-YA, -B, and -C subunits interact and form a stable NF-Y heterotrimeric complex. Reverse genetic and chromatin immunoprecipitation-PCR approaches revealed the importance of these newly identified NF-YB and NF-YC subunits for rhizobial symbiosis and binding to the promoter of MtERN1 (for Ethylene Responsive factor required for Nodulation), a direct target gene of MtNF-YA1 and MtNF-YA2. Finally, we verified that a similar trimer is formed in planta by the common bean (Phaseolus vulgaris) NF-Y subunits, revealing the existence of evolutionary conserved NF-Y protein complexes to control nodulation in leguminous plants. This sheds light on the process whereby an ancient heterotrimeric TF mainly controlling cell division in animals has acquired specialized functions in plants.
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Affiliation(s)
- Maël Baudin
- Laboratoire des Interactions Plantes-Microorganismes, Centre National de la Recherche Scientifique, Unité Mixte de Recherche 2594, F-31326 Castanet-Tolosan, France (M.B., T.L., A.L., L.F., P.G., F.d.C.-N., A.N.);Laboratoire des Interactions Plantes-Microorganismes, Institut National de la Recherche Agronomique, Unité Mixte de Recherche 441, F-31326 Castanet-Tolosan, France (M.B., T.L., A.L., L.F., P.G., F.d.C.-N., A.N.);Instituto de Biotecnología y Biología Molecular, Facultad de Ciencias Económicas, Universidad Nacional de La Plata, CP 1900 La Plata, Argentina (C.R., F.A.B., M.E.Z.); andCentre National de la Recherche Scientifique, Institute of Plant Sciences, Université Paris-Saclay, 91405 Orsay, France (F.A., M.C.)
| | - Tom Laloum
- Laboratoire des Interactions Plantes-Microorganismes, Centre National de la Recherche Scientifique, Unité Mixte de Recherche 2594, F-31326 Castanet-Tolosan, France (M.B., T.L., A.L., L.F., P.G., F.d.C.-N., A.N.);Laboratoire des Interactions Plantes-Microorganismes, Institut National de la Recherche Agronomique, Unité Mixte de Recherche 441, F-31326 Castanet-Tolosan, France (M.B., T.L., A.L., L.F., P.G., F.d.C.-N., A.N.);Instituto de Biotecnología y Biología Molecular, Facultad de Ciencias Económicas, Universidad Nacional de La Plata, CP 1900 La Plata, Argentina (C.R., F.A.B., M.E.Z.); andCentre National de la Recherche Scientifique, Institute of Plant Sciences, Université Paris-Saclay, 91405 Orsay, France (F.A., M.C.)
| | - Agnès Lepage
- Laboratoire des Interactions Plantes-Microorganismes, Centre National de la Recherche Scientifique, Unité Mixte de Recherche 2594, F-31326 Castanet-Tolosan, France (M.B., T.L., A.L., L.F., P.G., F.d.C.-N., A.N.);Laboratoire des Interactions Plantes-Microorganismes, Institut National de la Recherche Agronomique, Unité Mixte de Recherche 441, F-31326 Castanet-Tolosan, France (M.B., T.L., A.L., L.F., P.G., F.d.C.-N., A.N.);Instituto de Biotecnología y Biología Molecular, Facultad de Ciencias Económicas, Universidad Nacional de La Plata, CP 1900 La Plata, Argentina (C.R., F.A.B., M.E.Z.); andCentre National de la Recherche Scientifique, Institute of Plant Sciences, Université Paris-Saclay, 91405 Orsay, France (F.A., M.C.)
| | - Carolina Rípodas
- Laboratoire des Interactions Plantes-Microorganismes, Centre National de la Recherche Scientifique, Unité Mixte de Recherche 2594, F-31326 Castanet-Tolosan, France (M.B., T.L., A.L., L.F., P.G., F.d.C.-N., A.N.);Laboratoire des Interactions Plantes-Microorganismes, Institut National de la Recherche Agronomique, Unité Mixte de Recherche 441, F-31326 Castanet-Tolosan, France (M.B., T.L., A.L., L.F., P.G., F.d.C.-N., A.N.);Instituto de Biotecnología y Biología Molecular, Facultad de Ciencias Económicas, Universidad Nacional de La Plata, CP 1900 La Plata, Argentina (C.R., F.A.B., M.E.Z.); andCentre National de la Recherche Scientifique, Institute of Plant Sciences, Université Paris-Saclay, 91405 Orsay, France (F.A., M.C.)
| | - Federico Ariel
- Laboratoire des Interactions Plantes-Microorganismes, Centre National de la Recherche Scientifique, Unité Mixte de Recherche 2594, F-31326 Castanet-Tolosan, France (M.B., T.L., A.L., L.F., P.G., F.d.C.-N., A.N.);Laboratoire des Interactions Plantes-Microorganismes, Institut National de la Recherche Agronomique, Unité Mixte de Recherche 441, F-31326 Castanet-Tolosan, France (M.B., T.L., A.L., L.F., P.G., F.d.C.-N., A.N.);Instituto de Biotecnología y Biología Molecular, Facultad de Ciencias Económicas, Universidad Nacional de La Plata, CP 1900 La Plata, Argentina (C.R., F.A.B., M.E.Z.); andCentre National de la Recherche Scientifique, Institute of Plant Sciences, Université Paris-Saclay, 91405 Orsay, France (F.A., M.C.)
| | - Lisa Frances
- Laboratoire des Interactions Plantes-Microorganismes, Centre National de la Recherche Scientifique, Unité Mixte de Recherche 2594, F-31326 Castanet-Tolosan, France (M.B., T.L., A.L., L.F., P.G., F.d.C.-N., A.N.);Laboratoire des Interactions Plantes-Microorganismes, Institut National de la Recherche Agronomique, Unité Mixte de Recherche 441, F-31326 Castanet-Tolosan, France (M.B., T.L., A.L., L.F., P.G., F.d.C.-N., A.N.);Instituto de Biotecnología y Biología Molecular, Facultad de Ciencias Económicas, Universidad Nacional de La Plata, CP 1900 La Plata, Argentina (C.R., F.A.B., M.E.Z.); andCentre National de la Recherche Scientifique, Institute of Plant Sciences, Université Paris-Saclay, 91405 Orsay, France (F.A., M.C.)
| | - Martin Crespi
- Laboratoire des Interactions Plantes-Microorganismes, Centre National de la Recherche Scientifique, Unité Mixte de Recherche 2594, F-31326 Castanet-Tolosan, France (M.B., T.L., A.L., L.F., P.G., F.d.C.-N., A.N.);Laboratoire des Interactions Plantes-Microorganismes, Institut National de la Recherche Agronomique, Unité Mixte de Recherche 441, F-31326 Castanet-Tolosan, France (M.B., T.L., A.L., L.F., P.G., F.d.C.-N., A.N.);Instituto de Biotecnología y Biología Molecular, Facultad de Ciencias Económicas, Universidad Nacional de La Plata, CP 1900 La Plata, Argentina (C.R., F.A.B., M.E.Z.); andCentre National de la Recherche Scientifique, Institute of Plant Sciences, Université Paris-Saclay, 91405 Orsay, France (F.A., M.C.)
| | - Pascal Gamas
- Laboratoire des Interactions Plantes-Microorganismes, Centre National de la Recherche Scientifique, Unité Mixte de Recherche 2594, F-31326 Castanet-Tolosan, France (M.B., T.L., A.L., L.F., P.G., F.d.C.-N., A.N.);Laboratoire des Interactions Plantes-Microorganismes, Institut National de la Recherche Agronomique, Unité Mixte de Recherche 441, F-31326 Castanet-Tolosan, France (M.B., T.L., A.L., L.F., P.G., F.d.C.-N., A.N.);Instituto de Biotecnología y Biología Molecular, Facultad de Ciencias Económicas, Universidad Nacional de La Plata, CP 1900 La Plata, Argentina (C.R., F.A.B., M.E.Z.); andCentre National de la Recherche Scientifique, Institute of Plant Sciences, Université Paris-Saclay, 91405 Orsay, France (F.A., M.C.)
| | - Flavio Antonio Blanco
- Laboratoire des Interactions Plantes-Microorganismes, Centre National de la Recherche Scientifique, Unité Mixte de Recherche 2594, F-31326 Castanet-Tolosan, France (M.B., T.L., A.L., L.F., P.G., F.d.C.-N., A.N.);Laboratoire des Interactions Plantes-Microorganismes, Institut National de la Recherche Agronomique, Unité Mixte de Recherche 441, F-31326 Castanet-Tolosan, France (M.B., T.L., A.L., L.F., P.G., F.d.C.-N., A.N.);Instituto de Biotecnología y Biología Molecular, Facultad de Ciencias Económicas, Universidad Nacional de La Plata, CP 1900 La Plata, Argentina (C.R., F.A.B., M.E.Z.); andCentre National de la Recherche Scientifique, Institute of Plant Sciences, Université Paris-Saclay, 91405 Orsay, France (F.A., M.C.)
| | - Maria Eugenia Zanetti
- Laboratoire des Interactions Plantes-Microorganismes, Centre National de la Recherche Scientifique, Unité Mixte de Recherche 2594, F-31326 Castanet-Tolosan, France (M.B., T.L., A.L., L.F., P.G., F.d.C.-N., A.N.);Laboratoire des Interactions Plantes-Microorganismes, Institut National de la Recherche Agronomique, Unité Mixte de Recherche 441, F-31326 Castanet-Tolosan, France (M.B., T.L., A.L., L.F., P.G., F.d.C.-N., A.N.);Instituto de Biotecnología y Biología Molecular, Facultad de Ciencias Económicas, Universidad Nacional de La Plata, CP 1900 La Plata, Argentina (C.R., F.A.B., M.E.Z.); andCentre National de la Recherche Scientifique, Institute of Plant Sciences, Université Paris-Saclay, 91405 Orsay, France (F.A., M.C.)
| | - Fernanda de Carvalho-Niebel
- Laboratoire des Interactions Plantes-Microorganismes, Centre National de la Recherche Scientifique, Unité Mixte de Recherche 2594, F-31326 Castanet-Tolosan, France (M.B., T.L., A.L., L.F., P.G., F.d.C.-N., A.N.);Laboratoire des Interactions Plantes-Microorganismes, Institut National de la Recherche Agronomique, Unité Mixte de Recherche 441, F-31326 Castanet-Tolosan, France (M.B., T.L., A.L., L.F., P.G., F.d.C.-N., A.N.);Instituto de Biotecnología y Biología Molecular, Facultad de Ciencias Económicas, Universidad Nacional de La Plata, CP 1900 La Plata, Argentina (C.R., F.A.B., M.E.Z.); andCentre National de la Recherche Scientifique, Institute of Plant Sciences, Université Paris-Saclay, 91405 Orsay, France (F.A., M.C.)
| | - Andreas Niebel
- Laboratoire des Interactions Plantes-Microorganismes, Centre National de la Recherche Scientifique, Unité Mixte de Recherche 2594, F-31326 Castanet-Tolosan, France (M.B., T.L., A.L., L.F., P.G., F.d.C.-N., A.N.);Laboratoire des Interactions Plantes-Microorganismes, Institut National de la Recherche Agronomique, Unité Mixte de Recherche 441, F-31326 Castanet-Tolosan, France (M.B., T.L., A.L., L.F., P.G., F.d.C.-N., A.N.);Instituto de Biotecnología y Biología Molecular, Facultad de Ciencias Económicas, Universidad Nacional de La Plata, CP 1900 La Plata, Argentina (C.R., F.A.B., M.E.Z.); andCentre National de la Recherche Scientifique, Institute of Plant Sciences, Université Paris-Saclay, 91405 Orsay, France (F.A., M.C.)
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205
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Li L, Zheng W, Zhu Y, Ye H, Tang B, Arendsee ZW, Jones D, Li R, Ortiz D, Zhao X, Du C, Nettleton D, Scott MP, Salas-Fernandez MG, Yin Y, Wurtele ES. QQS orphan gene regulates carbon and nitrogen partitioning across species via NF-YC interactions. Proc Natl Acad Sci U S A 2015; 112:14734-9. [PMID: 26554020 PMCID: PMC4664325 DOI: 10.1073/pnas.1514670112] [Citation(s) in RCA: 72] [Impact Index Per Article: 7.2] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/20/2022] Open
Abstract
The allocation of carbon and nitrogen resources to the synthesis of plant proteins, carbohydrates, and lipids is complex and under the control of many genes; much remains to be understood about this process. QQS (Qua-Quine Starch; At3g30720), an orphan gene unique to Arabidopsis thaliana, regulates metabolic processes affecting carbon and nitrogen partitioning among proteins and carbohydrates, modulating leaf and seed composition in Arabidopsis and soybean. Here the universality of QQS function in modulating carbon and nitrogen allocation is exemplified by a series of transgenic experiments. We show that ectopic expression of QQS increases soybean protein independent of the genetic background and original protein content of the cultivar. Furthermore, transgenic QQS expression increases the protein content of maize, a C4 species (a species that uses 4-carbon photosynthesis), and rice, a protein-poor agronomic crop, both highly divergent from Arabidopsis. We determine that QQS protein binds to the transcriptional regulator AtNF-YC4 (Arabidopsis nuclear factor Y, subunit C4). Overexpression of AtNF-YC4 in Arabidopsis mimics the QQS-overexpression phenotype, increasing protein and decreasing starch levels. NF-YC, a component of the NF-Y complex, is conserved across eukaryotes. The NF-YC4 homologs of soybean, rice, and maize also bind to QQS, which provides an explanation of how QQS can act in species where it does not occur endogenously. These findings are, to our knowledge, the first insight into the mechanism of action of QQS in modulating carbon and nitrogen allocation across species. They have major implications for the emergence and function of orphan genes, and identify a nontransgenic strategy for modulating protein levels in crop species, a trait of great agronomic significance.
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Affiliation(s)
- Ling Li
- Department of Genetics, Development and Cell Biology, Iowa State University, Ames, IA 50011; Center for Metabolic Biology, Iowa State University, Ames, IA 50011;
| | - Wenguang Zheng
- Department of Genetics, Development and Cell Biology, Iowa State University, Ames, IA 50011; Center for Metabolic Biology, Iowa State University, Ames, IA 50011
| | - Yanbing Zhu
- Department of Genetics, Development and Cell Biology, Iowa State University, Ames, IA 50011
| | - Huaxun Ye
- Department of Genetics, Development and Cell Biology, Iowa State University, Ames, IA 50011
| | - Buyun Tang
- Department of Genetics, Development and Cell Biology, Iowa State University, Ames, IA 50011
| | - Zebulun W Arendsee
- Department of Genetics, Development and Cell Biology, Iowa State University, Ames, IA 50011
| | - Dallas Jones
- Department of Genetics, Development and Cell Biology, Iowa State University, Ames, IA 50011
| | - Ruoran Li
- Department of Genetics, Development and Cell Biology, Iowa State University, Ames, IA 50011
| | - Diego Ortiz
- Department of Agronomy, Iowa State University, Ames, IA 50011
| | - Xuefeng Zhao
- Department of Biochemistry, Biophysics and Molecular Biology, Iowa State University, Ames, IA 50011
| | - Chuanlong Du
- Department of Statistics, Iowa State University, Ames, IA 50011
| | - Dan Nettleton
- Department of Statistics, Iowa State University, Ames, IA 50011
| | - M Paul Scott
- Department of Agronomy, Iowa State University, Ames, IA 50011; Corn Insects and Crop Genetics Research Unit, Agricultural Research Service, US Department of Agriculture, Ames, IA 50011
| | | | - Yanhai Yin
- Department of Genetics, Development and Cell Biology, Iowa State University, Ames, IA 50011
| | - Eve Syrkin Wurtele
- Department of Genetics, Development and Cell Biology, Iowa State University, Ames, IA 50011; Center for Metabolic Biology, Iowa State University, Ames, IA 50011;
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206
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Palmeros-Suárez PA, Massange-Sánchez JA, Martínez-Gallardo NA, Montero-Vargas JM, Gómez-Leyva JF, Délano-Frier JP. The overexpression of an Amaranthus hypochondriacus NF-YC gene modifies growth and confers water deficit stress resistance in Arabidopsis. PLANT SCIENCE : AN INTERNATIONAL JOURNAL OF EXPERIMENTAL PLANT BIOLOGY 2015; 240:25-40. [PMID: 26475185 DOI: 10.1016/j.plantsci.2015.08.010] [Citation(s) in RCA: 33] [Impact Index Per Article: 3.3] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 05/06/2015] [Revised: 08/12/2015] [Accepted: 08/14/2015] [Indexed: 05/28/2023]
Abstract
Nuclear factor-Y (NF-Y), is a plant heterotrimeric transcription factor constituted by NF-YA, NF-YB and NF-YC subunits. The function of many NF-Y subunits, mostly of the A and B type, has been studied in plants, but knowledge regarding the C subunit remains fragmentary. Here, a water stress-induced NF-YC gene from Amaranthus hypochondriacus (AhNF-YC) was further characterized by its overexpression in transgenic Arabidospis thaliana plants. A role in development was inferred from modified growth rates in root, rosettes and inflorescences recorded in AhNF-YC overexpressing Arabidopsis plants, in addition to a delayed onset of flowering. Also, the overexpression of AhNF-YC caused increased seedling sensitivity to abscisic acid (ABA), and influenced the expression of several genes involved in secondary metabolism, development and ABA-related responses. An altered expression of the latter in water stressed and recovered transgenic plants, together with the observed increase in ABA sensitivity, suggested that their increased water stress resistance was partly ABA-dependent. An untargeted metabolomic analysis also revealed an altered metabolite pattern, both in normal and water stress/recovery conditions. These results suggest that AhNF-YC may play an important regulatory role in both development and stress, and represents a candidate gene for the engineering of abiotic stress resistance in commercial crops.
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Affiliation(s)
- Paola A Palmeros-Suárez
- Centro de Investigación y de Estudios Avanzados del I. P. N. (Cinvestav), Unidad Irapuato, Km 9.6 del Libramiento Norte Carretera Irapuato-León, Apartado Postal 629, C.P. 36821 Irapuato, Guanajuato, Mexico
| | - Julio A Massange-Sánchez
- Centro de Investigación y de Estudios Avanzados del I. P. N. (Cinvestav), Unidad Irapuato, Km 9.6 del Libramiento Norte Carretera Irapuato-León, Apartado Postal 629, C.P. 36821 Irapuato, Guanajuato, Mexico
| | - Norma A Martínez-Gallardo
- Centro de Investigación y de Estudios Avanzados del I. P. N. (Cinvestav), Unidad Irapuato, Km 9.6 del Libramiento Norte Carretera Irapuato-León, Apartado Postal 629, C.P. 36821 Irapuato, Guanajuato, Mexico
| | - Josaphat M Montero-Vargas
- Centro de Investigación y de Estudios Avanzados del I. P. N. (Cinvestav), Unidad Irapuato, Km 9.6 del Libramiento Norte Carretera Irapuato-León, Apartado Postal 629, C.P. 36821 Irapuato, Guanajuato, Mexico
| | - Juan F Gómez-Leyva
- Laboratorio de Biología Molecular, Instituto Tecnológico de Tlajomulco, Jalisco (ITTJ), Km 10 Carretera a San Miguel Cuyutlán, C.P. 45640 Tlajomulco de Zúñiga, Jalisco, Mexico
| | - John P Délano-Frier
- Centro de Investigación y de Estudios Avanzados del I. P. N. (Cinvestav), Unidad Irapuato, Km 9.6 del Libramiento Norte Carretera Irapuato-León, Apartado Postal 629, C.P. 36821 Irapuato, Guanajuato, Mexico.
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207
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Yadav D, Shavrukov Y, Bazanova N, Chirkova L, Borisjuk N, Kovalchuk N, Ismagul A, Parent B, Langridge P, Hrmova M, Lopato S. Constitutive overexpression of the TaNF-YB4 gene in transgenic wheat significantly improves grain yield. JOURNAL OF EXPERIMENTAL BOTANY 2015; 66:6635-6650. [PMID: 26220082 PMCID: PMC4623681 DOI: 10.1093/jxb/erv370] [Citation(s) in RCA: 19] [Impact Index Per Article: 1.9] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 05/22/2023]
Abstract
Heterotrimeric nuclear factors Y (NF-Ys) are involved in regulation of various vital functions in all eukaryotic organisms. Although a number of NF-Y subunits have been characterized in model plants, only a few have been functionally evaluated in crops. In this work, a number of genes encoding NF-YB and NF-YC subunits were isolated from drought-tolerant wheat (Triticum aestivum L. cv. RAC875), and the impact of the overexpression of TaNF-YB4 in the Australian wheat cultivar Gladius was investigated. TaNF-YB4 was isolated as a result of two consecutive yeast two-hybrid (Y2H) screens, where ZmNF-YB2a was used as a starting bait. A new NF-YC subunit, designated TaNF-YC15, was isolated in the first Y2H screen and used as bait in a second screen, which identified two wheat NF-YB subunits, TaNF-YB2 and TaNF-YB4. Three-dimensional modelling of a TaNF-YB2/TaNF-YC15 dimer revealed structural determinants that may underlie interaction selectivity. The TaNF-YB4 gene was placed under the control of the strong constitutive polyubiquitin promoter from maize and introduced into wheat by biolistic bombardment. The growth and yield components of several independent transgenic lines with up-regulated levels of TaNF-YB4 were evaluated under well-watered conditions (T1-T3 generations) and under mild drought (T2 generation). Analysis of T2 plants was performed in large deep containers in conditions close to field trials. Under optimal watering conditions, transgenic wheat plants produced significantly more spikes but other yield components did not change. This resulted in a 20-30% increased grain yield compared with untransformed control plants. Under water-limited conditions transgenic lines maintained parity in yield performance.
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Affiliation(s)
- Dinesh Yadav
- University of Adelaide, Australian Centre for Plant Functional Genomics, Urrbrae SA 5064, Australia
| | - Yuri Shavrukov
- University of Adelaide, Australian Centre for Plant Functional Genomics, Urrbrae SA 5064, Australia
| | - Natalia Bazanova
- University of Adelaide, Australian Centre for Plant Functional Genomics, Urrbrae SA 5064, Australia
| | - Larissa Chirkova
- University of Adelaide, Australian Centre for Plant Functional Genomics, Urrbrae SA 5064, Australia
| | - Nikolai Borisjuk
- University of Adelaide, Australian Centre for Plant Functional Genomics, Urrbrae SA 5064, Australia
| | - Nataliya Kovalchuk
- University of Adelaide, Australian Centre for Plant Functional Genomics, Urrbrae SA 5064, Australia
| | - Ainur Ismagul
- University of Adelaide, Australian Centre for Plant Functional Genomics, Urrbrae SA 5064, Australia
| | - Boris Parent
- University of Adelaide, Australian Centre for Plant Functional Genomics, Urrbrae SA 5064, Australia
| | - Peter Langridge
- University of Adelaide, Australian Centre for Plant Functional Genomics, Urrbrae SA 5064, Australia
| | - Maria Hrmova
- University of Adelaide, Australian Centre for Plant Functional Genomics, Urrbrae SA 5064, Australia
| | - Sergiy Lopato
- University of Adelaide, Australian Centre for Plant Functional Genomics, Urrbrae SA 5064, Australia
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208
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Tang G, Xu P, Liu W, Liu Z, Shan L. Cloning and Characterization of 5' Flanking Regulatory Sequences of AhLEC1B Gene from Arachis Hypogaea L. PLoS One 2015; 10:e0139213. [PMID: 26426444 PMCID: PMC4591277 DOI: 10.1371/journal.pone.0139213] [Citation(s) in RCA: 6] [Impact Index Per Article: 0.6] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 05/09/2015] [Accepted: 09/09/2015] [Indexed: 11/19/2022] Open
Abstract
LEAFY COTYLEDON1 (LEC1) is a B subunit of Nuclear Factor Y (NF-YB) transcription factor that mainly accumulates during embryo development. We cloned the 5' flanking regulatory sequence of AhLEC1B gene, a homolog of Arabidopsis LEC1, and analyzed its regulatory elements using online software. To identify the crucial regulatory region, we generated a series of GUS expression frameworks driven by different length promoters with 5' terminal and/or 3' terminal deletion. We further characterized the GUS expression patterns in the transgenic Arabidopsis lines. Our results show that both the 65 bp proximal promoter region and the 52 bp 5' UTR of AhLEC1B contain the key motifs required for the essential promoting activity. Moreover, AhLEC1B is preferentially expressed in the embryo and is co-regulated by binding of its upstream genes with both positive and negative corresponding cis-regulatory elements.
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Affiliation(s)
- Guiying Tang
- Bio-Tech Research Centre, Shandong Academy of Agricultural Sciences / Shandong Provincial Key Laboratory of Crop Genetic Improvement, Ecology and Physiology, Jinan, 250100, China
| | - Pingli Xu
- Bio-Tech Research Centre, Shandong Academy of Agricultural Sciences / Shandong Provincial Key Laboratory of Crop Genetic Improvement, Ecology and Physiology, Jinan, 250100, China
| | - Wei Liu
- College of Agriculture, Shandong University, Jinan, 250100, China
| | - Zhanji Liu
- Bio-Tech Research Centre, Shandong Academy of Agricultural Sciences / Shandong Provincial Key Laboratory of Crop Genetic Improvement, Ecology and Physiology, Jinan, 250100, China
| | - Lei Shan
- Bio-Tech Research Centre, Shandong Academy of Agricultural Sciences / Shandong Provincial Key Laboratory of Crop Genetic Improvement, Ecology and Physiology, Jinan, 250100, China
- College of Agriculture, Shandong University, Jinan, 250100, China
- * E-mail:
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209
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Ay N, Janack B, Fischer A, Reuter G, Humbeck K. Alterations of histone modifications at the senescence-associated gene HvS40 in barley during senescence. PLANT MOLECULAR BIOLOGY 2015; 89:127-41. [PMID: 26249045 DOI: 10.1007/s11103-015-0358-2] [Citation(s) in RCA: 2] [Impact Index Per Article: 0.2] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 12/12/2014] [Accepted: 08/02/2015] [Indexed: 05/09/2023]
Abstract
The barley gene HvS40, encoding a putative regulator of leaf senescence, is strongly induced during leaf senescence. As shown by chromatin immunoprecipitation, euchromatic histone modification H3K9ac is added at promoter close to ATG and coding sequence of HvS40 after onset of senescence. In parallel, level of heterochromatic H3K9me2 decreases at this gene. Bisulfite sequencing revealed no DNA-methylation in this region, but a heavily methylated DNA-island, starting 664 bp upstream from translational start site in both, mature and senescent leaves. A decrease in DNA methylation in senescing leaves could be shown at one specific CpG motif at the end of this methylation island. In addition, global changes in chromatin structure during senescence were analyzed via immunocytology, revealing senescence-associated changes in spatial distribution of heterochromatic H3K9me2 patterns in the nuclei. Our results prove a senescence-specific mechanism, altering histone modification marks at distinct sequences of the senescence-associated gene HvS40 and altering distribution of heterochromatic areas in the nuclei.
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Affiliation(s)
- Nicole Ay
- Department of Plant Physiology, Institute of Biology, Martin-Luther University Halle-Wittenberg, Weinbergweg 10, 06120, Halle, Germany
| | - Bianka Janack
- Department of Plant Physiology, Institute of Biology, Martin-Luther University Halle-Wittenberg, Weinbergweg 10, 06120, Halle, Germany
| | - Andreas Fischer
- Department of Genetics, Institute of Biology, Martin-Luther University Halle-Wittenberg, Weinbergweg 10, 06120, Halle, Germany
| | - Gunter Reuter
- Department of Genetics, Institute of Biology, Martin-Luther University Halle-Wittenberg, Weinbergweg 10, 06120, Halle, Germany
| | - Klaus Humbeck
- Department of Plant Physiology, Institute of Biology, Martin-Luther University Halle-Wittenberg, Weinbergweg 10, 06120, Halle, Germany.
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210
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Zhang T, Zhang D, Liu Y, Luo C, Zhou Y, Zhang L. Overexpression of a NF-YB3 transcription factor from Picea wilsonii confers tolerance to salinity and drought stress in transformed Arabidopsis thaliana. PLANT PHYSIOLOGY AND BIOCHEMISTRY : PPB 2015; 94:153-64. [PMID: 26093308 DOI: 10.1016/j.plaphy.2015.05.001] [Citation(s) in RCA: 43] [Impact Index Per Article: 4.3] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 03/04/2015] [Revised: 04/16/2015] [Accepted: 05/02/2015] [Indexed: 05/04/2023]
Abstract
Nuclear factor Y (NF-Y) is a highly conserved transcription factor comprising NF-YA, NF-YB and NF-YC subunits. To date, the roles of NF-Y subunit in plant still remain elusive. In this study, a subunit NF-YB (PwNF-YB3), was isolated from Picea wilsonii Mast. and its role was studied. PwNF-YB3 transcript was detected in all vegetative and reproductive tissues with higher levels in stem and root and was greatly induced by salinity, heat and PEG but not by cold and ABA treatment. Over-expression of PwNF-YB3 in Arabidopsis showed a significant acceleration in the onset of flowering and resulted in more vigorous seed germination and significant tolerance for seedlings under salinity, drought and osmotic stress compared with wild type plants. Transcription levels of salinity-responsive gene (SOS3) and drought-induced gene (CDPK1) were substantially higher in transgenic Arabidopsis than in wild-type plants. Importantly, CBF pathway markers (COR15B, KIN1, LEA76), but not ABA pathway markers CBF4, were greatly induced under condition of drought. The nuclear localization showed that NF-YB3 acted as a transcription factor. Taken together, the data provide evidence that PwNF-YB3 positively confers significant tolerance to salt, osmotic and drought stress in transformed Arabidopsis plants probably through modulating gene regulation in CBF-dependent pathway.
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Affiliation(s)
- Tong Zhang
- Key Laboratory of Forest Silviculture and Conservation of the Ministry of Education, Beijing Forestry University, Beijing 100083, PR China
| | - Dun Zhang
- Key Laboratory of Forest Silviculture and Conservation of the Ministry of Education, Beijing Forestry University, Beijing 100083, PR China
| | - Yajing Liu
- Key Laboratory of Forest Silviculture and Conservation of the Ministry of Education, Beijing Forestry University, Beijing 100083, PR China
| | - Chaobing Luo
- Key Laboratory of Forest Silviculture and Conservation of the Ministry of Education, Beijing Forestry University, Beijing 100083, PR China
| | - Yanni Zhou
- Key Laboratory of Forest Silviculture and Conservation of the Ministry of Education, Beijing Forestry University, Beijing 100083, PR China
| | - Lingyun Zhang
- Key Laboratory of Forest Silviculture and Conservation of the Ministry of Education, Beijing Forestry University, Beijing 100083, PR China.
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211
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Larrainzar E, Riely BK, Kim SC, Carrasquilla-Garcia N, Yu HJ, Hwang HJ, Oh M, Kim GB, Surendrarao AK, Chasman D, Siahpirani AF, Penmetsa RV, Lee GS, Kim N, Roy S, Mun JH, Cook DR. Deep Sequencing of the Medicago truncatula Root Transcriptome Reveals a Massive and Early Interaction between Nodulation Factor and Ethylene Signals. PLANT PHYSIOLOGY 2015; 169:233-65. [PMID: 26175514 PMCID: PMC4577383 DOI: 10.1104/pp.15.00350] [Citation(s) in RCA: 96] [Impact Index Per Article: 9.6] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 03/05/2015] [Accepted: 07/13/2015] [Indexed: 05/11/2023]
Abstract
The legume-rhizobium symbiosis is initiated through the activation of the Nodulation (Nod) factor-signaling cascade, leading to a rapid reprogramming of host cell developmental pathways. In this work, we combine transcriptome sequencing with molecular genetics and network analysis to quantify and categorize the transcriptional changes occurring in roots of Medicago truncatula from minutes to days after inoculation with Sinorhizobium medicae. To identify the nature of the inductive and regulatory cues, we employed mutants with absent or decreased Nod factor sensitivities (i.e. Nodulation factor perception and Lysine motif domain-containing receptor-like kinase3, respectively) and an ethylene (ET)-insensitive, Nod factor-hypersensitive mutant (sickle). This unique data set encompasses nine time points, allowing observation of the symbiotic regulation of diverse biological processes with high temporal resolution. Among the many outputs of the study is the early Nod factor-induced, ET-regulated expression of ET signaling and biosynthesis genes. Coupled with the observation of massive transcriptional derepression in the ET-insensitive background, these results suggest that Nod factor signaling activates ET production to attenuate its own signal. Promoter:β-glucuronidase fusions report ET biosynthesis both in root hairs responding to rhizobium as well as in meristematic tissue during nodule organogenesis and growth, indicating that ET signaling functions at multiple developmental stages during symbiosis. In addition, we identified thousands of novel candidate genes undergoing Nod factor-dependent, ET-regulated expression. We leveraged the power of this large data set to model Nod factor- and ET-regulated signaling networks using MERLIN, a regulatory network inference algorithm. These analyses predict key nodes regulating the biological process impacted by Nod factor perception. We have made these results available to the research community through a searchable online resource.
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Affiliation(s)
- Estíbaliz Larrainzar
- Department of Plant Pathology (E.L., B.K.R., N.C.-G., R.V.P., D.R.C) and Plant Biology Graduate Group (A.K.S.), University of California, Davis, California 95616;Korean Research Institute of Bioscience and Biotechnology, Daejeon 305-806, Republic of Korea (S.C.K., N.K.);Catholic University of Korea, Bucheon 420-743, Republic of Korea (H.-J.Y.);Rural Development Administration, Jeonju 560-500, Republic of Korea (H.-J.H., M.O., G.-S.L.);Myongji University, Yongin 449-728, Republic of Korea (G.B.K., J.-H.M.);Wisconsin Institute for Discovery, Madison, Wisconsin 53715 (D.C., S.R.); andDepartment of Computer Sciences (A.F.S.) and Department of Biostatistics and Medical Informatics (S.R.), University of Wisconsin, Madison, Wisconsin 53715
| | - Brendan K Riely
- Department of Plant Pathology (E.L., B.K.R., N.C.-G., R.V.P., D.R.C) and Plant Biology Graduate Group (A.K.S.), University of California, Davis, California 95616;Korean Research Institute of Bioscience and Biotechnology, Daejeon 305-806, Republic of Korea (S.C.K., N.K.);Catholic University of Korea, Bucheon 420-743, Republic of Korea (H.-J.Y.);Rural Development Administration, Jeonju 560-500, Republic of Korea (H.-J.H., M.O., G.-S.L.);Myongji University, Yongin 449-728, Republic of Korea (G.B.K., J.-H.M.);Wisconsin Institute for Discovery, Madison, Wisconsin 53715 (D.C., S.R.); andDepartment of Computer Sciences (A.F.S.) and Department of Biostatistics and Medical Informatics (S.R.), University of Wisconsin, Madison, Wisconsin 53715
| | - Sang Cheol Kim
- Department of Plant Pathology (E.L., B.K.R., N.C.-G., R.V.P., D.R.C) and Plant Biology Graduate Group (A.K.S.), University of California, Davis, California 95616;Korean Research Institute of Bioscience and Biotechnology, Daejeon 305-806, Republic of Korea (S.C.K., N.K.);Catholic University of Korea, Bucheon 420-743, Republic of Korea (H.-J.Y.);Rural Development Administration, Jeonju 560-500, Republic of Korea (H.-J.H., M.O., G.-S.L.);Myongji University, Yongin 449-728, Republic of Korea (G.B.K., J.-H.M.);Wisconsin Institute for Discovery, Madison, Wisconsin 53715 (D.C., S.R.); andDepartment of Computer Sciences (A.F.S.) and Department of Biostatistics and Medical Informatics (S.R.), University of Wisconsin, Madison, Wisconsin 53715
| | - Noelia Carrasquilla-Garcia
- Department of Plant Pathology (E.L., B.K.R., N.C.-G., R.V.P., D.R.C) and Plant Biology Graduate Group (A.K.S.), University of California, Davis, California 95616;Korean Research Institute of Bioscience and Biotechnology, Daejeon 305-806, Republic of Korea (S.C.K., N.K.);Catholic University of Korea, Bucheon 420-743, Republic of Korea (H.-J.Y.);Rural Development Administration, Jeonju 560-500, Republic of Korea (H.-J.H., M.O., G.-S.L.);Myongji University, Yongin 449-728, Republic of Korea (G.B.K., J.-H.M.);Wisconsin Institute for Discovery, Madison, Wisconsin 53715 (D.C., S.R.); andDepartment of Computer Sciences (A.F.S.) and Department of Biostatistics and Medical Informatics (S.R.), University of Wisconsin, Madison, Wisconsin 53715
| | - Hee-Ju Yu
- Department of Plant Pathology (E.L., B.K.R., N.C.-G., R.V.P., D.R.C) and Plant Biology Graduate Group (A.K.S.), University of California, Davis, California 95616;Korean Research Institute of Bioscience and Biotechnology, Daejeon 305-806, Republic of Korea (S.C.K., N.K.);Catholic University of Korea, Bucheon 420-743, Republic of Korea (H.-J.Y.);Rural Development Administration, Jeonju 560-500, Republic of Korea (H.-J.H., M.O., G.-S.L.);Myongji University, Yongin 449-728, Republic of Korea (G.B.K., J.-H.M.);Wisconsin Institute for Discovery, Madison, Wisconsin 53715 (D.C., S.R.); andDepartment of Computer Sciences (A.F.S.) and Department of Biostatistics and Medical Informatics (S.R.), University of Wisconsin, Madison, Wisconsin 53715
| | - Hyun-Ju Hwang
- Department of Plant Pathology (E.L., B.K.R., N.C.-G., R.V.P., D.R.C) and Plant Biology Graduate Group (A.K.S.), University of California, Davis, California 95616;Korean Research Institute of Bioscience and Biotechnology, Daejeon 305-806, Republic of Korea (S.C.K., N.K.);Catholic University of Korea, Bucheon 420-743, Republic of Korea (H.-J.Y.);Rural Development Administration, Jeonju 560-500, Republic of Korea (H.-J.H., M.O., G.-S.L.);Myongji University, Yongin 449-728, Republic of Korea (G.B.K., J.-H.M.);Wisconsin Institute for Discovery, Madison, Wisconsin 53715 (D.C., S.R.); andDepartment of Computer Sciences (A.F.S.) and Department of Biostatistics and Medical Informatics (S.R.), University of Wisconsin, Madison, Wisconsin 53715
| | - Mijin Oh
- Department of Plant Pathology (E.L., B.K.R., N.C.-G., R.V.P., D.R.C) and Plant Biology Graduate Group (A.K.S.), University of California, Davis, California 95616;Korean Research Institute of Bioscience and Biotechnology, Daejeon 305-806, Republic of Korea (S.C.K., N.K.);Catholic University of Korea, Bucheon 420-743, Republic of Korea (H.-J.Y.);Rural Development Administration, Jeonju 560-500, Republic of Korea (H.-J.H., M.O., G.-S.L.);Myongji University, Yongin 449-728, Republic of Korea (G.B.K., J.-H.M.);Wisconsin Institute for Discovery, Madison, Wisconsin 53715 (D.C., S.R.); andDepartment of Computer Sciences (A.F.S.) and Department of Biostatistics and Medical Informatics (S.R.), University of Wisconsin, Madison, Wisconsin 53715
| | - Goon Bo Kim
- Department of Plant Pathology (E.L., B.K.R., N.C.-G., R.V.P., D.R.C) and Plant Biology Graduate Group (A.K.S.), University of California, Davis, California 95616;Korean Research Institute of Bioscience and Biotechnology, Daejeon 305-806, Republic of Korea (S.C.K., N.K.);Catholic University of Korea, Bucheon 420-743, Republic of Korea (H.-J.Y.);Rural Development Administration, Jeonju 560-500, Republic of Korea (H.-J.H., M.O., G.-S.L.);Myongji University, Yongin 449-728, Republic of Korea (G.B.K., J.-H.M.);Wisconsin Institute for Discovery, Madison, Wisconsin 53715 (D.C., S.R.); andDepartment of Computer Sciences (A.F.S.) and Department of Biostatistics and Medical Informatics (S.R.), University of Wisconsin, Madison, Wisconsin 53715
| | - Anandkumar K Surendrarao
- Department of Plant Pathology (E.L., B.K.R., N.C.-G., R.V.P., D.R.C) and Plant Biology Graduate Group (A.K.S.), University of California, Davis, California 95616;Korean Research Institute of Bioscience and Biotechnology, Daejeon 305-806, Republic of Korea (S.C.K., N.K.);Catholic University of Korea, Bucheon 420-743, Republic of Korea (H.-J.Y.);Rural Development Administration, Jeonju 560-500, Republic of Korea (H.-J.H., M.O., G.-S.L.);Myongji University, Yongin 449-728, Republic of Korea (G.B.K., J.-H.M.);Wisconsin Institute for Discovery, Madison, Wisconsin 53715 (D.C., S.R.); andDepartment of Computer Sciences (A.F.S.) and Department of Biostatistics and Medical Informatics (S.R.), University of Wisconsin, Madison, Wisconsin 53715
| | - Deborah Chasman
- Department of Plant Pathology (E.L., B.K.R., N.C.-G., R.V.P., D.R.C) and Plant Biology Graduate Group (A.K.S.), University of California, Davis, California 95616;Korean Research Institute of Bioscience and Biotechnology, Daejeon 305-806, Republic of Korea (S.C.K., N.K.);Catholic University of Korea, Bucheon 420-743, Republic of Korea (H.-J.Y.);Rural Development Administration, Jeonju 560-500, Republic of Korea (H.-J.H., M.O., G.-S.L.);Myongji University, Yongin 449-728, Republic of Korea (G.B.K., J.-H.M.);Wisconsin Institute for Discovery, Madison, Wisconsin 53715 (D.C., S.R.); andDepartment of Computer Sciences (A.F.S.) and Department of Biostatistics and Medical Informatics (S.R.), University of Wisconsin, Madison, Wisconsin 53715
| | - Alireza F Siahpirani
- Department of Plant Pathology (E.L., B.K.R., N.C.-G., R.V.P., D.R.C) and Plant Biology Graduate Group (A.K.S.), University of California, Davis, California 95616;Korean Research Institute of Bioscience and Biotechnology, Daejeon 305-806, Republic of Korea (S.C.K., N.K.);Catholic University of Korea, Bucheon 420-743, Republic of Korea (H.-J.Y.);Rural Development Administration, Jeonju 560-500, Republic of Korea (H.-J.H., M.O., G.-S.L.);Myongji University, Yongin 449-728, Republic of Korea (G.B.K., J.-H.M.);Wisconsin Institute for Discovery, Madison, Wisconsin 53715 (D.C., S.R.); andDepartment of Computer Sciences (A.F.S.) and Department of Biostatistics and Medical Informatics (S.R.), University of Wisconsin, Madison, Wisconsin 53715
| | - Ramachandra V Penmetsa
- Department of Plant Pathology (E.L., B.K.R., N.C.-G., R.V.P., D.R.C) and Plant Biology Graduate Group (A.K.S.), University of California, Davis, California 95616;Korean Research Institute of Bioscience and Biotechnology, Daejeon 305-806, Republic of Korea (S.C.K., N.K.);Catholic University of Korea, Bucheon 420-743, Republic of Korea (H.-J.Y.);Rural Development Administration, Jeonju 560-500, Republic of Korea (H.-J.H., M.O., G.-S.L.);Myongji University, Yongin 449-728, Republic of Korea (G.B.K., J.-H.M.);Wisconsin Institute for Discovery, Madison, Wisconsin 53715 (D.C., S.R.); andDepartment of Computer Sciences (A.F.S.) and Department of Biostatistics and Medical Informatics (S.R.), University of Wisconsin, Madison, Wisconsin 53715
| | - Gang-Seob Lee
- Department of Plant Pathology (E.L., B.K.R., N.C.-G., R.V.P., D.R.C) and Plant Biology Graduate Group (A.K.S.), University of California, Davis, California 95616;Korean Research Institute of Bioscience and Biotechnology, Daejeon 305-806, Republic of Korea (S.C.K., N.K.);Catholic University of Korea, Bucheon 420-743, Republic of Korea (H.-J.Y.);Rural Development Administration, Jeonju 560-500, Republic of Korea (H.-J.H., M.O., G.-S.L.);Myongji University, Yongin 449-728, Republic of Korea (G.B.K., J.-H.M.);Wisconsin Institute for Discovery, Madison, Wisconsin 53715 (D.C., S.R.); andDepartment of Computer Sciences (A.F.S.) and Department of Biostatistics and Medical Informatics (S.R.), University of Wisconsin, Madison, Wisconsin 53715
| | - Namshin Kim
- Department of Plant Pathology (E.L., B.K.R., N.C.-G., R.V.P., D.R.C) and Plant Biology Graduate Group (A.K.S.), University of California, Davis, California 95616;Korean Research Institute of Bioscience and Biotechnology, Daejeon 305-806, Republic of Korea (S.C.K., N.K.);Catholic University of Korea, Bucheon 420-743, Republic of Korea (H.-J.Y.);Rural Development Administration, Jeonju 560-500, Republic of Korea (H.-J.H., M.O., G.-S.L.);Myongji University, Yongin 449-728, Republic of Korea (G.B.K., J.-H.M.);Wisconsin Institute for Discovery, Madison, Wisconsin 53715 (D.C., S.R.); andDepartment of Computer Sciences (A.F.S.) and Department of Biostatistics and Medical Informatics (S.R.), University of Wisconsin, Madison, Wisconsin 53715
| | - Sushmita Roy
- Department of Plant Pathology (E.L., B.K.R., N.C.-G., R.V.P., D.R.C) and Plant Biology Graduate Group (A.K.S.), University of California, Davis, California 95616;Korean Research Institute of Bioscience and Biotechnology, Daejeon 305-806, Republic of Korea (S.C.K., N.K.);Catholic University of Korea, Bucheon 420-743, Republic of Korea (H.-J.Y.);Rural Development Administration, Jeonju 560-500, Republic of Korea (H.-J.H., M.O., G.-S.L.);Myongji University, Yongin 449-728, Republic of Korea (G.B.K., J.-H.M.);Wisconsin Institute for Discovery, Madison, Wisconsin 53715 (D.C., S.R.); andDepartment of Computer Sciences (A.F.S.) and Department of Biostatistics and Medical Informatics (S.R.), University of Wisconsin, Madison, Wisconsin 53715
| | - Jeong-Hwan Mun
- Department of Plant Pathology (E.L., B.K.R., N.C.-G., R.V.P., D.R.C) and Plant Biology Graduate Group (A.K.S.), University of California, Davis, California 95616;Korean Research Institute of Bioscience and Biotechnology, Daejeon 305-806, Republic of Korea (S.C.K., N.K.);Catholic University of Korea, Bucheon 420-743, Republic of Korea (H.-J.Y.);Rural Development Administration, Jeonju 560-500, Republic of Korea (H.-J.H., M.O., G.-S.L.);Myongji University, Yongin 449-728, Republic of Korea (G.B.K., J.-H.M.);Wisconsin Institute for Discovery, Madison, Wisconsin 53715 (D.C., S.R.); andDepartment of Computer Sciences (A.F.S.) and Department of Biostatistics and Medical Informatics (S.R.), University of Wisconsin, Madison, Wisconsin 53715
| | - Douglas R Cook
- Department of Plant Pathology (E.L., B.K.R., N.C.-G., R.V.P., D.R.C) and Plant Biology Graduate Group (A.K.S.), University of California, Davis, California 95616;Korean Research Institute of Bioscience and Biotechnology, Daejeon 305-806, Republic of Korea (S.C.K., N.K.);Catholic University of Korea, Bucheon 420-743, Republic of Korea (H.-J.Y.);Rural Development Administration, Jeonju 560-500, Republic of Korea (H.-J.H., M.O., G.-S.L.);Myongji University, Yongin 449-728, Republic of Korea (G.B.K., J.-H.M.);Wisconsin Institute for Discovery, Madison, Wisconsin 53715 (D.C., S.R.); andDepartment of Computer Sciences (A.F.S.) and Department of Biostatistics and Medical Informatics (S.R.), University of Wisconsin, Madison, Wisconsin 53715
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212
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Zhang F, Han M, Lv Q, Bao F, He Y. Identification and expression profile analysis of NUCLEAR FACTOR-Y families in Physcomitrella patens. FRONTIERS IN PLANT SCIENCE 2015; 6:642. [PMID: 26347760 PMCID: PMC4541308 DOI: 10.3389/fpls.2015.00642] [Citation(s) in RCA: 10] [Impact Index Per Article: 1.0] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Subscribe] [Scholar Register] [Received: 04/09/2015] [Accepted: 08/02/2015] [Indexed: 05/26/2023]
Abstract
NUCLEAR FACTOR Y transcription factors belong to a multimember family and consist of NF-YA/B/C subunits. Members of the NF-Y family have been reported to regulate physiological processes in plant. In this study, we identified and annotated two NF-YA, nine NF-B, and twelve NF-YC proteins in the genome of Physcomitrella patens. Analyses of conserved domains demonstrated that PpNF-YA/B/C shared the same conserved domains with their orthologous proteins in Arabidopsis, O. sativa and mouse. Expression profiles indicated that PpNF-Ys were widely expressed in different tissues and developmental stages of P. patens throughout protonema and gametophores. The majority of PpNF-Y genes were responsive to abiotic stress via either ABA-independent or -dependent pathways. Some of ABA-regulated PpNF-Y expression were mediated by ABI3. To our knowledge, this study was the first to evaluate NF-Y families in Physcomitrella patens, and provides a foundation to dissect the function of PpNF-Ys.
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Affiliation(s)
| | | | | | | | - Yikun He
- *Correspondence: Yikun He, College of Life Science, Capital Normal University, #105 XiSanHuan N. Rd., Beijing 100048, China
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213
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Abstract
The transcription factor NUCLEAR FACTOR Y (NF-Y) plays an essential role in many developmental and stress-responsive processes in plants. NF-Y composed of 3 subunits, NF-YA, NF-YB, and NF-YC, targets the CCAAT box, a common cis-element in eukaryotic promoters. We recently identified a gene TaNF-YA10-1 from the wheat salinity tolerant cultivar SR3 and found that recombinant TaNF-YA10-1 could successfully bind to the CCAAT motif in vitro. We also showed that the constitutive expression of TaNF-YA10-1 in Arabidopsis thaliana significantly increased the plant's sensitivity to salinity. Here, we further demonstrated that TaNF-YA10-1 -overexpressing plants conferred drought tolerance as judged from the relative root length and whole-plant growth under drought stress. These results suggest that TaNF-YA10-1 functions independently in salinity and drought stress. Our findings are helpful in understanding the distinct roles of NF-YA in plant stress responses.
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Affiliation(s)
- Xiaoyan Ma
- a The Key Laboratory of Plant Cell Engineering and Germplasm Innovation; Ministry of Education; School of Life Science; Shandong University ; Jinan , PR China
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214
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Quach TN, Nguyen HTM, Valliyodan B, Joshi T, Xu D, Nguyen HT. Genome-wide expression analysis of soybean NF-Y genes reveals potential function in development and drought response. Mol Genet Genomics 2015; 290:1095-115. [PMID: 25542200 PMCID: PMC4435856 DOI: 10.1007/s00438-014-0978-2] [Citation(s) in RCA: 59] [Impact Index Per Article: 5.9] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 05/05/2014] [Accepted: 12/10/2014] [Indexed: 11/30/2022]
Abstract
Nuclear factor-Y (NF-Y), a heterotrimeric transcription factor, is composed of NF-YA, NF-YB and NF-YC proteins. In plants, there are usually more than 10 genes for each family and their members have been identified to be key regulators in many developmental and physiological processes controlling gametogenesis, embryogenesis, nodule development, seed development, abscisic acid (ABA) signaling, flowering time, primary root elongation, blue light responses, endoplasmic reticulum (ER) stress response and drought tolerance. Taking the advantages of the recent soybean genome draft and information on functional characterizations of nuclear factor Y (NF-Y) transcription factor family in plants, we identified 21 GmNF-YA, 32 GmNF-YB, and 15 GmNF-YC genes in the soybean (Glycine max) genome. Phylogenetic analyses show that soybean's proteins share strong homology to Arabidopsis and many of them are closely related to functionally characterized NF-Y in plants. Expression analysis in various tissues of flower, leaf, root, seeds of different developmental stages, root hairs under rhizobium inoculation, and drought-treated roots and leaves revealed that certain groups of soybean NF-Y are likely involved in specific developmental and stress responses. This study provides extensive evaluation of the soybean NF-Y family and is particularly useful for further functional characterization of GmNF-Y proteins in seed development, nodulation and drought adaptation of soybean.
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Affiliation(s)
- Truyen N. Quach
- Division of Plant Sciences and National Center for Soybean Biotechnology, University of Missouri, Columbia, MO 65211 USA
- Present Address: Field Crop Research Institute, Vietnam Academy of Agricultural Sciences, Hanoi, Vietnam
| | - Hanh T. M. Nguyen
- Division of Plant Sciences and National Center for Soybean Biotechnology, University of Missouri, Columbia, MO 65211 USA
- Present Address: The Center for Plant Science Innovation, University of Nebraska, Lincoln, NE USA
| | - Babu Valliyodan
- Division of Plant Sciences and National Center for Soybean Biotechnology, University of Missouri, Columbia, MO 65211 USA
| | - Trupti Joshi
- Department of Computer Science, Christopher S. Bond Life Sciences Center, National Center for Soybean Biotechnology and Informatics Institute, University of Missouri, Columbia, MO USA
| | - Dong Xu
- Department of Computer Science, Christopher S. Bond Life Sciences Center, National Center for Soybean Biotechnology and Informatics Institute, University of Missouri, Columbia, MO USA
| | - Henry T. Nguyen
- Division of Plant Sciences and National Center for Soybean Biotechnology, University of Missouri, Columbia, MO 65211 USA
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215
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Chen M, Zhao Y, Zhuo C, Lu S, Guo Z. Overexpression of a NF-YC transcription factor from bermudagrass confers tolerance to drought and salinity in transgenic rice. PLANT BIOTECHNOLOGY JOURNAL 2015; 13:482-91. [PMID: 25283804 DOI: 10.1111/pbi.12270] [Citation(s) in RCA: 74] [Impact Index Per Article: 7.4] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 05/07/2014] [Revised: 08/17/2014] [Accepted: 08/28/2014] [Indexed: 05/19/2023]
Abstract
Nuclear factor Y (NF-Y) is a ubiquitous transcription factor formed by three distinct subunits, namely NF-YA, NF-YB and NF-YC. A stress-responsive cDNA of NF-YC (Cdt-NF-YC1) was isolated from triploid bermudagrass (Cynodon dactylon × Cynodon transvaalensis), and its role in abiotic stress tolerance was investigated in this study. Cdt-NF-YC1 transcript was detected in all vegetative tissues with higher levels being observed in roots. Transcription of Cdt-NF-YC1 in leaves was induced by dehydration, salinity, and treatments with abscisic acid (ABA), hydrogen peroxide (H2 O2 ) or nitric oxide (NO), but not altered by cold. The dehydration- or salt-induced transcription of Cdt-NF-YC1 was blocked by inhibitor of ABA synthesis and scavenger of H2 O2 or NO, indicating that ABA, H2 O2 and NO were involved in the dehydration- and salt-induced transcription of Cdt-NF-YC1. Overexpression of Cdt-NF-YC1 resulted in elevated tolerance to drought and salt stress and increased sensitivity to ABA in transgenic rice. Transcript levels of stress/ABA responsive genes (OsLEA3, OsRAB16A, OsLIP9 and OsP5CS1), ABA synthesis and signalling genes (OsNCED3 and OsABI2), and ABA-independent genes (OsDREB1A, OsDREB1B and OsDREB2A) were substantially higher in transgenic rice than in wild-type plants. The results suggested that that Cdt-NF-YC1 is a good candidate gene to increase drought and salinity tolerance in transgenic rice through modulating gene regulation in both ABA-dependent and ABA-independent pathways.
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Affiliation(s)
- Miao Chen
- State Key Laboratory for Conservation and Utilization of Subtropical Agro-bioresources, South China Agricultural University, Guangzhou, China
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216
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Mei X, Liu C, Yu T, Liu X, Xu D, Wang J, Wang G, Cai Y. Identification and characterization of paternal-preferentially expressed gene NF-YC8 in maize endosperm. Mol Genet Genomics 2015; 290:1819-31. [DOI: 10.1007/s00438-015-1043-5] [Citation(s) in RCA: 8] [Impact Index Per Article: 0.8] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 01/03/2015] [Accepted: 03/28/2015] [Indexed: 01/17/2023]
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217
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Knuesting J, Riondet C, Maria C, Kruse I, Bécuwe N, König N, Berndt C, Tourrette S, Guilleminot-Montoya J, Herrero E, Gaymard F, Balk J, Belli G, Scheibe R, Reichheld JP, Rouhier N, Rey P. Arabidopsis glutaredoxin S17 and its partner, the nuclear factor Y subunit C11/negative cofactor 2α, contribute to maintenance of the shoot apical meristem under long-day photoperiod. PLANT PHYSIOLOGY 2015; 167:1643-58. [PMID: 25699589 PMCID: PMC4378178 DOI: 10.1104/pp.15.00049] [Citation(s) in RCA: 33] [Impact Index Per Article: 3.3] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 01/14/2015] [Accepted: 02/10/2015] [Indexed: 05/18/2023]
Abstract
Glutaredoxins (GRXs) catalyze the reduction of protein disulfide bonds using glutathione as a reductant. Certain GRXs are able to transfer iron-sulfur clusters to other proteins. To investigate the function of Arabidopsis (Arabidopsis thaliana) GRXS17, we applied a strategy combining biochemical, genetic, and physiological approaches. GRXS17 was localized in the nucleus and cytosol, and its expression was elevated in the shoot meristems and reproductive tissues. Recombinant GRXS17 bound Fe2S2 clusters, a property likely contributing to its ability to complement the defects of a Baker's yeast (Saccharomyces cerevisiae) strain lacking the mitochondrial GRX5. However, a grxs17 knockout Arabidopsis mutant exhibited only a minor decrease in the activities of iron-sulfur enzymes, suggesting that its primary function is as a disulfide oxidoreductase. The grxS17 plants were sensitive to high temperatures and long-day photoperiods, resulting in elongated leaves, compromised shoot apical meristem, and delayed bolting. Both environmental conditions applied simultaneously led to a growth arrest. Using affinity chromatography and split-Yellow Fluorescent Protein methods, a nuclear transcriptional regulator, the Nuclear Factor Y Subunit C11/Negative Cofactor 2α (NF-YC11/NC2α), was identified as a GRXS17 interacting partner. A mutant deficient in NF-YC11/NC2α exhibited similar phenotypes to grxs17 in response to photoperiod. Therefore, we propose that GRXS17 interacts with NF-YC11/NC2α to relay a redox signal generated by the photoperiod to maintain meristem function.
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Affiliation(s)
- Johannes Knuesting
- Department of Plant Physiology, FB5, University of Osnabrück, D-49069 Osnabrueck, Germany (J.K., N.K., R.S.);Laboratoire Génome et Développement des Plantes, Université Perpignan Via Domitia, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Laboratoire Génome et Développement des Plantes, Centre National de la Recherche Scientifique, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Departament de Ciències Mèdiques Bàsiques, IRB Lleida, Universitat de Lleida, 25008 Lleida, Spain (C.M., E.H., G.B.);Department of Biological Chemistry, John Innes Centre, Norwich NR4 7UH, United Kingdom (I.K., J.B.);Commissariat à l'Energie Atomique et aux Energies Alternatives, DSV, IBEB, Laboratoire d'Ecophysiologie Moléculaire des Plantes, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Centre National de la Recherche Scientifique, Unité Mixte de Recherche 7265 Biologie Végétale and Microbiologie Environnementale, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Aix-Marseille Université, Service de Biologie Végétale et de Microbiologie Environnementales Unité Mixte de Recherche 7265, F-13284 Marseille, France (N.B., S.T., P.R.);Division for Biochemistry, Department for Medical Biochemistry and Biophysics, Karolinska Institutet, 17177 Stockholm, Sweden (C.B.);Department of Neurology, Medical Faculty, Heinrich-Heine-University, 40225 Duesseldorf, Germany (C.B.);Biochimie et Physiologie Moléculaire des Plantes, Centre National de la Recherche Scientifique, Institut National de la Recherche Agronomique, Université Montpellier, Montpellier cedex 1, France (F.G.);Université de Lorraine, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54500 Vandoeuvre-lès-Nancy, France (N.R.); andInstitut National de la Recherche Agronomique, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54280 Champenoux, France (N.R.)
| | - Christophe Riondet
- Department of Plant Physiology, FB5, University of Osnabrück, D-49069 Osnabrueck, Germany (J.K., N.K., R.S.);Laboratoire Génome et Développement des Plantes, Université Perpignan Via Domitia, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Laboratoire Génome et Développement des Plantes, Centre National de la Recherche Scientifique, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Departament de Ciències Mèdiques Bàsiques, IRB Lleida, Universitat de Lleida, 25008 Lleida, Spain (C.M., E.H., G.B.);Department of Biological Chemistry, John Innes Centre, Norwich NR4 7UH, United Kingdom (I.K., J.B.);Commissariat à l'Energie Atomique et aux Energies Alternatives, DSV, IBEB, Laboratoire d'Ecophysiologie Moléculaire des Plantes, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Centre National de la Recherche Scientifique, Unité Mixte de Recherche 7265 Biologie Végétale and Microbiologie Environnementale, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Aix-Marseille Université, Service de Biologie Végétale et de Microbiologie Environnementales Unité Mixte de Recherche 7265, F-13284 Marseille, France (N.B., S.T., P.R.);Division for Biochemistry, Department for Medical Biochemistry and Biophysics, Karolinska Institutet, 17177 Stockholm, Sweden (C.B.);Department of Neurology, Medical Faculty, Heinrich-Heine-University, 40225 Duesseldorf, Germany (C.B.);Biochimie et Physiologie Moléculaire des Plantes, Centre National de la Recherche Scientifique, Institut National de la Recherche Agronomique, Université Montpellier, Montpellier cedex 1, France (F.G.);Université de Lorraine, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54500 Vandoeuvre-lès-Nancy, France (N.R.); andInstitut National de la Recherche Agronomique, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54280 Champenoux, France (N.R.)
| | - Carlos Maria
- Department of Plant Physiology, FB5, University of Osnabrück, D-49069 Osnabrueck, Germany (J.K., N.K., R.S.);Laboratoire Génome et Développement des Plantes, Université Perpignan Via Domitia, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Laboratoire Génome et Développement des Plantes, Centre National de la Recherche Scientifique, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Departament de Ciències Mèdiques Bàsiques, IRB Lleida, Universitat de Lleida, 25008 Lleida, Spain (C.M., E.H., G.B.);Department of Biological Chemistry, John Innes Centre, Norwich NR4 7UH, United Kingdom (I.K., J.B.);Commissariat à l'Energie Atomique et aux Energies Alternatives, DSV, IBEB, Laboratoire d'Ecophysiologie Moléculaire des Plantes, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Centre National de la Recherche Scientifique, Unité Mixte de Recherche 7265 Biologie Végétale and Microbiologie Environnementale, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Aix-Marseille Université, Service de Biologie Végétale et de Microbiologie Environnementales Unité Mixte de Recherche 7265, F-13284 Marseille, France (N.B., S.T., P.R.);Division for Biochemistry, Department for Medical Biochemistry and Biophysics, Karolinska Institutet, 17177 Stockholm, Sweden (C.B.);Department of Neurology, Medical Faculty, Heinrich-Heine-University, 40225 Duesseldorf, Germany (C.B.);Biochimie et Physiologie Moléculaire des Plantes, Centre National de la Recherche Scientifique, Institut National de la Recherche Agronomique, Université Montpellier, Montpellier cedex 1, France (F.G.);Université de Lorraine, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54500 Vandoeuvre-lès-Nancy, France (N.R.); andInstitut National de la Recherche Agronomique, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54280 Champenoux, France (N.R.)
| | - Inga Kruse
- Department of Plant Physiology, FB5, University of Osnabrück, D-49069 Osnabrueck, Germany (J.K., N.K., R.S.);Laboratoire Génome et Développement des Plantes, Université Perpignan Via Domitia, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Laboratoire Génome et Développement des Plantes, Centre National de la Recherche Scientifique, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Departament de Ciències Mèdiques Bàsiques, IRB Lleida, Universitat de Lleida, 25008 Lleida, Spain (C.M., E.H., G.B.);Department of Biological Chemistry, John Innes Centre, Norwich NR4 7UH, United Kingdom (I.K., J.B.);Commissariat à l'Energie Atomique et aux Energies Alternatives, DSV, IBEB, Laboratoire d'Ecophysiologie Moléculaire des Plantes, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Centre National de la Recherche Scientifique, Unité Mixte de Recherche 7265 Biologie Végétale and Microbiologie Environnementale, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Aix-Marseille Université, Service de Biologie Végétale et de Microbiologie Environnementales Unité Mixte de Recherche 7265, F-13284 Marseille, France (N.B., S.T., P.R.);Division for Biochemistry, Department for Medical Biochemistry and Biophysics, Karolinska Institutet, 17177 Stockholm, Sweden (C.B.);Department of Neurology, Medical Faculty, Heinrich-Heine-University, 40225 Duesseldorf, Germany (C.B.);Biochimie et Physiologie Moléculaire des Plantes, Centre National de la Recherche Scientifique, Institut National de la Recherche Agronomique, Université Montpellier, Montpellier cedex 1, France (F.G.);Université de Lorraine, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54500 Vandoeuvre-lès-Nancy, France (N.R.); andInstitut National de la Recherche Agronomique, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54280 Champenoux, France (N.R.)
| | - Noëlle Bécuwe
- Department of Plant Physiology, FB5, University of Osnabrück, D-49069 Osnabrueck, Germany (J.K., N.K., R.S.);Laboratoire Génome et Développement des Plantes, Université Perpignan Via Domitia, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Laboratoire Génome et Développement des Plantes, Centre National de la Recherche Scientifique, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Departament de Ciències Mèdiques Bàsiques, IRB Lleida, Universitat de Lleida, 25008 Lleida, Spain (C.M., E.H., G.B.);Department of Biological Chemistry, John Innes Centre, Norwich NR4 7UH, United Kingdom (I.K., J.B.);Commissariat à l'Energie Atomique et aux Energies Alternatives, DSV, IBEB, Laboratoire d'Ecophysiologie Moléculaire des Plantes, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Centre National de la Recherche Scientifique, Unité Mixte de Recherche 7265 Biologie Végétale and Microbiologie Environnementale, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Aix-Marseille Université, Service de Biologie Végétale et de Microbiologie Environnementales Unité Mixte de Recherche 7265, F-13284 Marseille, France (N.B., S.T., P.R.);Division for Biochemistry, Department for Medical Biochemistry and Biophysics, Karolinska Institutet, 17177 Stockholm, Sweden (C.B.);Department of Neurology, Medical Faculty, Heinrich-Heine-University, 40225 Duesseldorf, Germany (C.B.);Biochimie et Physiologie Moléculaire des Plantes, Centre National de la Recherche Scientifique, Institut National de la Recherche Agronomique, Université Montpellier, Montpellier cedex 1, France (F.G.);Université de Lorraine, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54500 Vandoeuvre-lès-Nancy, France (N.R.); andInstitut National de la Recherche Agronomique, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54280 Champenoux, France (N.R.)
| | - Nicolas König
- Department of Plant Physiology, FB5, University of Osnabrück, D-49069 Osnabrueck, Germany (J.K., N.K., R.S.);Laboratoire Génome et Développement des Plantes, Université Perpignan Via Domitia, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Laboratoire Génome et Développement des Plantes, Centre National de la Recherche Scientifique, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Departament de Ciències Mèdiques Bàsiques, IRB Lleida, Universitat de Lleida, 25008 Lleida, Spain (C.M., E.H., G.B.);Department of Biological Chemistry, John Innes Centre, Norwich NR4 7UH, United Kingdom (I.K., J.B.);Commissariat à l'Energie Atomique et aux Energies Alternatives, DSV, IBEB, Laboratoire d'Ecophysiologie Moléculaire des Plantes, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Centre National de la Recherche Scientifique, Unité Mixte de Recherche 7265 Biologie Végétale and Microbiologie Environnementale, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Aix-Marseille Université, Service de Biologie Végétale et de Microbiologie Environnementales Unité Mixte de Recherche 7265, F-13284 Marseille, France (N.B., S.T., P.R.);Division for Biochemistry, Department for Medical Biochemistry and Biophysics, Karolinska Institutet, 17177 Stockholm, Sweden (C.B.);Department of Neurology, Medical Faculty, Heinrich-Heine-University, 40225 Duesseldorf, Germany (C.B.);Biochimie et Physiologie Moléculaire des Plantes, Centre National de la Recherche Scientifique, Institut National de la Recherche Agronomique, Université Montpellier, Montpellier cedex 1, France (F.G.);Université de Lorraine, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54500 Vandoeuvre-lès-Nancy, France (N.R.); andInstitut National de la Recherche Agronomique, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54280 Champenoux, France (N.R.)
| | - Carsten Berndt
- Department of Plant Physiology, FB5, University of Osnabrück, D-49069 Osnabrueck, Germany (J.K., N.K., R.S.);Laboratoire Génome et Développement des Plantes, Université Perpignan Via Domitia, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Laboratoire Génome et Développement des Plantes, Centre National de la Recherche Scientifique, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Departament de Ciències Mèdiques Bàsiques, IRB Lleida, Universitat de Lleida, 25008 Lleida, Spain (C.M., E.H., G.B.);Department of Biological Chemistry, John Innes Centre, Norwich NR4 7UH, United Kingdom (I.K., J.B.);Commissariat à l'Energie Atomique et aux Energies Alternatives, DSV, IBEB, Laboratoire d'Ecophysiologie Moléculaire des Plantes, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Centre National de la Recherche Scientifique, Unité Mixte de Recherche 7265 Biologie Végétale and Microbiologie Environnementale, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Aix-Marseille Université, Service de Biologie Végétale et de Microbiologie Environnementales Unité Mixte de Recherche 7265, F-13284 Marseille, France (N.B., S.T., P.R.);Division for Biochemistry, Department for Medical Biochemistry and Biophysics, Karolinska Institutet, 17177 Stockholm, Sweden (C.B.);Department of Neurology, Medical Faculty, Heinrich-Heine-University, 40225 Duesseldorf, Germany (C.B.);Biochimie et Physiologie Moléculaire des Plantes, Centre National de la Recherche Scientifique, Institut National de la Recherche Agronomique, Université Montpellier, Montpellier cedex 1, France (F.G.);Université de Lorraine, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54500 Vandoeuvre-lès-Nancy, France (N.R.); andInstitut National de la Recherche Agronomique, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54280 Champenoux, France (N.R.)
| | - Sébastien Tourrette
- Department of Plant Physiology, FB5, University of Osnabrück, D-49069 Osnabrueck, Germany (J.K., N.K., R.S.);Laboratoire Génome et Développement des Plantes, Université Perpignan Via Domitia, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Laboratoire Génome et Développement des Plantes, Centre National de la Recherche Scientifique, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Departament de Ciències Mèdiques Bàsiques, IRB Lleida, Universitat de Lleida, 25008 Lleida, Spain (C.M., E.H., G.B.);Department of Biological Chemistry, John Innes Centre, Norwich NR4 7UH, United Kingdom (I.K., J.B.);Commissariat à l'Energie Atomique et aux Energies Alternatives, DSV, IBEB, Laboratoire d'Ecophysiologie Moléculaire des Plantes, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Centre National de la Recherche Scientifique, Unité Mixte de Recherche 7265 Biologie Végétale and Microbiologie Environnementale, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Aix-Marseille Université, Service de Biologie Végétale et de Microbiologie Environnementales Unité Mixte de Recherche 7265, F-13284 Marseille, France (N.B., S.T., P.R.);Division for Biochemistry, Department for Medical Biochemistry and Biophysics, Karolinska Institutet, 17177 Stockholm, Sweden (C.B.);Department of Neurology, Medical Faculty, Heinrich-Heine-University, 40225 Duesseldorf, Germany (C.B.);Biochimie et Physiologie Moléculaire des Plantes, Centre National de la Recherche Scientifique, Institut National de la Recherche Agronomique, Université Montpellier, Montpellier cedex 1, France (F.G.);Université de Lorraine, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54500 Vandoeuvre-lès-Nancy, France (N.R.); andInstitut National de la Recherche Agronomique, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54280 Champenoux, France (N.R.)
| | - Jocelyne Guilleminot-Montoya
- Department of Plant Physiology, FB5, University of Osnabrück, D-49069 Osnabrueck, Germany (J.K., N.K., R.S.);Laboratoire Génome et Développement des Plantes, Université Perpignan Via Domitia, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Laboratoire Génome et Développement des Plantes, Centre National de la Recherche Scientifique, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Departament de Ciències Mèdiques Bàsiques, IRB Lleida, Universitat de Lleida, 25008 Lleida, Spain (C.M., E.H., G.B.);Department of Biological Chemistry, John Innes Centre, Norwich NR4 7UH, United Kingdom (I.K., J.B.);Commissariat à l'Energie Atomique et aux Energies Alternatives, DSV, IBEB, Laboratoire d'Ecophysiologie Moléculaire des Plantes, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Centre National de la Recherche Scientifique, Unité Mixte de Recherche 7265 Biologie Végétale and Microbiologie Environnementale, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Aix-Marseille Université, Service de Biologie Végétale et de Microbiologie Environnementales Unité Mixte de Recherche 7265, F-13284 Marseille, France (N.B., S.T., P.R.);Division for Biochemistry, Department for Medical Biochemistry and Biophysics, Karolinska Institutet, 17177 Stockholm, Sweden (C.B.);Department of Neurology, Medical Faculty, Heinrich-Heine-University, 40225 Duesseldorf, Germany (C.B.);Biochimie et Physiologie Moléculaire des Plantes, Centre National de la Recherche Scientifique, Institut National de la Recherche Agronomique, Université Montpellier, Montpellier cedex 1, France (F.G.);Université de Lorraine, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54500 Vandoeuvre-lès-Nancy, France (N.R.); andInstitut National de la Recherche Agronomique, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54280 Champenoux, France (N.R.)
| | - Enrique Herrero
- Department of Plant Physiology, FB5, University of Osnabrück, D-49069 Osnabrueck, Germany (J.K., N.K., R.S.);Laboratoire Génome et Développement des Plantes, Université Perpignan Via Domitia, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Laboratoire Génome et Développement des Plantes, Centre National de la Recherche Scientifique, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Departament de Ciències Mèdiques Bàsiques, IRB Lleida, Universitat de Lleida, 25008 Lleida, Spain (C.M., E.H., G.B.);Department of Biological Chemistry, John Innes Centre, Norwich NR4 7UH, United Kingdom (I.K., J.B.);Commissariat à l'Energie Atomique et aux Energies Alternatives, DSV, IBEB, Laboratoire d'Ecophysiologie Moléculaire des Plantes, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Centre National de la Recherche Scientifique, Unité Mixte de Recherche 7265 Biologie Végétale and Microbiologie Environnementale, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Aix-Marseille Université, Service de Biologie Végétale et de Microbiologie Environnementales Unité Mixte de Recherche 7265, F-13284 Marseille, France (N.B., S.T., P.R.);Division for Biochemistry, Department for Medical Biochemistry and Biophysics, Karolinska Institutet, 17177 Stockholm, Sweden (C.B.);Department of Neurology, Medical Faculty, Heinrich-Heine-University, 40225 Duesseldorf, Germany (C.B.);Biochimie et Physiologie Moléculaire des Plantes, Centre National de la Recherche Scientifique, Institut National de la Recherche Agronomique, Université Montpellier, Montpellier cedex 1, France (F.G.);Université de Lorraine, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54500 Vandoeuvre-lès-Nancy, France (N.R.); andInstitut National de la Recherche Agronomique, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54280 Champenoux, France (N.R.)
| | - Frédéric Gaymard
- Department of Plant Physiology, FB5, University of Osnabrück, D-49069 Osnabrueck, Germany (J.K., N.K., R.S.);Laboratoire Génome et Développement des Plantes, Université Perpignan Via Domitia, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Laboratoire Génome et Développement des Plantes, Centre National de la Recherche Scientifique, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Departament de Ciències Mèdiques Bàsiques, IRB Lleida, Universitat de Lleida, 25008 Lleida, Spain (C.M., E.H., G.B.);Department of Biological Chemistry, John Innes Centre, Norwich NR4 7UH, United Kingdom (I.K., J.B.);Commissariat à l'Energie Atomique et aux Energies Alternatives, DSV, IBEB, Laboratoire d'Ecophysiologie Moléculaire des Plantes, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Centre National de la Recherche Scientifique, Unité Mixte de Recherche 7265 Biologie Végétale and Microbiologie Environnementale, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Aix-Marseille Université, Service de Biologie Végétale et de Microbiologie Environnementales Unité Mixte de Recherche 7265, F-13284 Marseille, France (N.B., S.T., P.R.);Division for Biochemistry, Department for Medical Biochemistry and Biophysics, Karolinska Institutet, 17177 Stockholm, Sweden (C.B.);Department of Neurology, Medical Faculty, Heinrich-Heine-University, 40225 Duesseldorf, Germany (C.B.);Biochimie et Physiologie Moléculaire des Plantes, Centre National de la Recherche Scientifique, Institut National de la Recherche Agronomique, Université Montpellier, Montpellier cedex 1, France (F.G.);Université de Lorraine, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54500 Vandoeuvre-lès-Nancy, France (N.R.); andInstitut National de la Recherche Agronomique, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54280 Champenoux, France (N.R.)
| | - Janneke Balk
- Department of Plant Physiology, FB5, University of Osnabrück, D-49069 Osnabrueck, Germany (J.K., N.K., R.S.);Laboratoire Génome et Développement des Plantes, Université Perpignan Via Domitia, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Laboratoire Génome et Développement des Plantes, Centre National de la Recherche Scientifique, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Departament de Ciències Mèdiques Bàsiques, IRB Lleida, Universitat de Lleida, 25008 Lleida, Spain (C.M., E.H., G.B.);Department of Biological Chemistry, John Innes Centre, Norwich NR4 7UH, United Kingdom (I.K., J.B.);Commissariat à l'Energie Atomique et aux Energies Alternatives, DSV, IBEB, Laboratoire d'Ecophysiologie Moléculaire des Plantes, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Centre National de la Recherche Scientifique, Unité Mixte de Recherche 7265 Biologie Végétale and Microbiologie Environnementale, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Aix-Marseille Université, Service de Biologie Végétale et de Microbiologie Environnementales Unité Mixte de Recherche 7265, F-13284 Marseille, France (N.B., S.T., P.R.);Division for Biochemistry, Department for Medical Biochemistry and Biophysics, Karolinska Institutet, 17177 Stockholm, Sweden (C.B.);Department of Neurology, Medical Faculty, Heinrich-Heine-University, 40225 Duesseldorf, Germany (C.B.);Biochimie et Physiologie Moléculaire des Plantes, Centre National de la Recherche Scientifique, Institut National de la Recherche Agronomique, Université Montpellier, Montpellier cedex 1, France (F.G.);Université de Lorraine, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54500 Vandoeuvre-lès-Nancy, France (N.R.); andInstitut National de la Recherche Agronomique, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54280 Champenoux, France (N.R.)
| | - Gemma Belli
- Department of Plant Physiology, FB5, University of Osnabrück, D-49069 Osnabrueck, Germany (J.K., N.K., R.S.);Laboratoire Génome et Développement des Plantes, Université Perpignan Via Domitia, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Laboratoire Génome et Développement des Plantes, Centre National de la Recherche Scientifique, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Departament de Ciències Mèdiques Bàsiques, IRB Lleida, Universitat de Lleida, 25008 Lleida, Spain (C.M., E.H., G.B.);Department of Biological Chemistry, John Innes Centre, Norwich NR4 7UH, United Kingdom (I.K., J.B.);Commissariat à l'Energie Atomique et aux Energies Alternatives, DSV, IBEB, Laboratoire d'Ecophysiologie Moléculaire des Plantes, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Centre National de la Recherche Scientifique, Unité Mixte de Recherche 7265 Biologie Végétale and Microbiologie Environnementale, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Aix-Marseille Université, Service de Biologie Végétale et de Microbiologie Environnementales Unité Mixte de Recherche 7265, F-13284 Marseille, France (N.B., S.T., P.R.);Division for Biochemistry, Department for Medical Biochemistry and Biophysics, Karolinska Institutet, 17177 Stockholm, Sweden (C.B.);Department of Neurology, Medical Faculty, Heinrich-Heine-University, 40225 Duesseldorf, Germany (C.B.);Biochimie et Physiologie Moléculaire des Plantes, Centre National de la Recherche Scientifique, Institut National de la Recherche Agronomique, Université Montpellier, Montpellier cedex 1, France (F.G.);Université de Lorraine, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54500 Vandoeuvre-lès-Nancy, France (N.R.); andInstitut National de la Recherche Agronomique, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54280 Champenoux, France (N.R.)
| | - Renate Scheibe
- Department of Plant Physiology, FB5, University of Osnabrück, D-49069 Osnabrueck, Germany (J.K., N.K., R.S.);Laboratoire Génome et Développement des Plantes, Université Perpignan Via Domitia, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Laboratoire Génome et Développement des Plantes, Centre National de la Recherche Scientifique, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Departament de Ciències Mèdiques Bàsiques, IRB Lleida, Universitat de Lleida, 25008 Lleida, Spain (C.M., E.H., G.B.);Department of Biological Chemistry, John Innes Centre, Norwich NR4 7UH, United Kingdom (I.K., J.B.);Commissariat à l'Energie Atomique et aux Energies Alternatives, DSV, IBEB, Laboratoire d'Ecophysiologie Moléculaire des Plantes, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Centre National de la Recherche Scientifique, Unité Mixte de Recherche 7265 Biologie Végétale and Microbiologie Environnementale, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Aix-Marseille Université, Service de Biologie Végétale et de Microbiologie Environnementales Unité Mixte de Recherche 7265, F-13284 Marseille, France (N.B., S.T., P.R.);Division for Biochemistry, Department for Medical Biochemistry and Biophysics, Karolinska Institutet, 17177 Stockholm, Sweden (C.B.);Department of Neurology, Medical Faculty, Heinrich-Heine-University, 40225 Duesseldorf, Germany (C.B.);Biochimie et Physiologie Moléculaire des Plantes, Centre National de la Recherche Scientifique, Institut National de la Recherche Agronomique, Université Montpellier, Montpellier cedex 1, France (F.G.);Université de Lorraine, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54500 Vandoeuvre-lès-Nancy, France (N.R.); andInstitut National de la Recherche Agronomique, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54280 Champenoux, France (N.R.)
| | - Jean-Philippe Reichheld
- Department of Plant Physiology, FB5, University of Osnabrück, D-49069 Osnabrueck, Germany (J.K., N.K., R.S.);Laboratoire Génome et Développement des Plantes, Université Perpignan Via Domitia, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Laboratoire Génome et Développement des Plantes, Centre National de la Recherche Scientifique, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Departament de Ciències Mèdiques Bàsiques, IRB Lleida, Universitat de Lleida, 25008 Lleida, Spain (C.M., E.H., G.B.);Department of Biological Chemistry, John Innes Centre, Norwich NR4 7UH, United Kingdom (I.K., J.B.);Commissariat à l'Energie Atomique et aux Energies Alternatives, DSV, IBEB, Laboratoire d'Ecophysiologie Moléculaire des Plantes, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Centre National de la Recherche Scientifique, Unité Mixte de Recherche 7265 Biologie Végétale and Microbiologie Environnementale, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Aix-Marseille Université, Service de Biologie Végétale et de Microbiologie Environnementales Unité Mixte de Recherche 7265, F-13284 Marseille, France (N.B., S.T., P.R.);Division for Biochemistry, Department for Medical Biochemistry and Biophysics, Karolinska Institutet, 17177 Stockholm, Sweden (C.B.);Department of Neurology, Medical Faculty, Heinrich-Heine-University, 40225 Duesseldorf, Germany (C.B.);Biochimie et Physiologie Moléculaire des Plantes, Centre National de la Recherche Scientifique, Institut National de la Recherche Agronomique, Université Montpellier, Montpellier cedex 1, France (F.G.);Université de Lorraine, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54500 Vandoeuvre-lès-Nancy, France (N.R.); andInstitut National de la Recherche Agronomique, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54280 Champenoux, France (N.R.)
| | - Nicolas Rouhier
- Department of Plant Physiology, FB5, University of Osnabrück, D-49069 Osnabrueck, Germany (J.K., N.K., R.S.);Laboratoire Génome et Développement des Plantes, Université Perpignan Via Domitia, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Laboratoire Génome et Développement des Plantes, Centre National de la Recherche Scientifique, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Departament de Ciències Mèdiques Bàsiques, IRB Lleida, Universitat de Lleida, 25008 Lleida, Spain (C.M., E.H., G.B.);Department of Biological Chemistry, John Innes Centre, Norwich NR4 7UH, United Kingdom (I.K., J.B.);Commissariat à l'Energie Atomique et aux Energies Alternatives, DSV, IBEB, Laboratoire d'Ecophysiologie Moléculaire des Plantes, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Centre National de la Recherche Scientifique, Unité Mixte de Recherche 7265 Biologie Végétale and Microbiologie Environnementale, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Aix-Marseille Université, Service de Biologie Végétale et de Microbiologie Environnementales Unité Mixte de Recherche 7265, F-13284 Marseille, France (N.B., S.T., P.R.);Division for Biochemistry, Department for Medical Biochemistry and Biophysics, Karolinska Institutet, 17177 Stockholm, Sweden (C.B.);Department of Neurology, Medical Faculty, Heinrich-Heine-University, 40225 Duesseldorf, Germany (C.B.);Biochimie et Physiologie Moléculaire des Plantes, Centre National de la Recherche Scientifique, Institut National de la Recherche Agronomique, Université Montpellier, Montpellier cedex 1, France (F.G.);Université de Lorraine, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54500 Vandoeuvre-lès-Nancy, France (N.R.); andInstitut National de la Recherche Agronomique, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54280 Champenoux, France (N.R.)
| | - Pascal Rey
- Department of Plant Physiology, FB5, University of Osnabrück, D-49069 Osnabrueck, Germany (J.K., N.K., R.S.);Laboratoire Génome et Développement des Plantes, Université Perpignan Via Domitia, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Laboratoire Génome et Développement des Plantes, Centre National de la Recherche Scientifique, F-66860 Perpignan, France (C.R., J.G.-M., J.-P.R.);Departament de Ciències Mèdiques Bàsiques, IRB Lleida, Universitat de Lleida, 25008 Lleida, Spain (C.M., E.H., G.B.);Department of Biological Chemistry, John Innes Centre, Norwich NR4 7UH, United Kingdom (I.K., J.B.);Commissariat à l'Energie Atomique et aux Energies Alternatives, DSV, IBEB, Laboratoire d'Ecophysiologie Moléculaire des Plantes, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Centre National de la Recherche Scientifique, Unité Mixte de Recherche 7265 Biologie Végétale and Microbiologie Environnementale, F-13108 Saint-Paul-lez-Durance, France (N.B., S.T., P.R.);Aix-Marseille Université, Service de Biologie Végétale et de Microbiologie Environnementales Unité Mixte de Recherche 7265, F-13284 Marseille, France (N.B., S.T., P.R.);Division for Biochemistry, Department for Medical Biochemistry and Biophysics, Karolinska Institutet, 17177 Stockholm, Sweden (C.B.);Department of Neurology, Medical Faculty, Heinrich-Heine-University, 40225 Duesseldorf, Germany (C.B.);Biochimie et Physiologie Moléculaire des Plantes, Centre National de la Recherche Scientifique, Institut National de la Recherche Agronomique, Université Montpellier, Montpellier cedex 1, France (F.G.);Université de Lorraine, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54500 Vandoeuvre-lès-Nancy, France (N.R.); andInstitut National de la Recherche Agronomique, Interactions Arbres-Microorganismes, Unité Mixte de Recherche 1136, F-54280 Champenoux, France (N.R.)
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218
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Luke LP, Mohamed Sathik MB, Thomas M, Kuruvilla L, Sumesh KV, Annamalainathan K. Quantitative expression analysis of drought responsive genes in clones of Hevea with varying levels of drought tolerance. PHYSIOLOGY AND MOLECULAR BIOLOGY OF PLANTS : AN INTERNATIONAL JOURNAL OF FUNCTIONAL PLANT BIOLOGY 2015; 21:179-186. [PMID: 25964712 PMCID: PMC4411388 DOI: 10.1007/s12298-015-0288-0] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.1] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Received: 01/19/2015] [Revised: 02/27/2015] [Accepted: 03/03/2015] [Indexed: 06/03/2023]
Abstract
In order to meet the ever rising global demand for natural rubber, cultivation of Hevea is being extended to non-traditional regions of India where extreme climatic conditions like drought and low temperature negatively influence the crop performance. In order to ensure maximum productivity, identification of drought tolerant clones of Hevea which can cope up with stress and give better crop yield is essential. Several attempts have been made previously to identify genes that are associated with drought tolerance in Hevea. In the present study, quantitative expression analysis was made using quantitative PCR for seven drought associated transcripts in four clones of Hevea with varying levels of drought tolerance. Among the seven genes studied, Mitogen Activated Protein (MAP) kinase, Myeloblastosis (Myb) transcription factor, C-repeat responsive element/Dehydration Responsive Element (CRT/DRE) binding factor and Nuclear Factor Y subunit A (NFYA) showed a positive association with drought tolerance. Transcripts of ascorbate peroxidase and heat shock protein 70 (HSP 70) did not show any correlation with drought tolerance. Interestingly, catalase gene was found down regulated in all the clones under drought condition. The possible role of these genes based on their level of gene expression in four different clones of Hevea with varying levels of drought tolerance is discussed.
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Affiliation(s)
- Lisha P. Luke
- Rubber Research Institute of India, Rubber Board P.O., Kottayam, 686009 Kerala India
| | - M. B. Mohamed Sathik
- Rubber Research Institute of India, Rubber Board P.O., Kottayam, 686009 Kerala India
| | - Molly Thomas
- Rubber Research Institute of India, Rubber Board P.O., Kottayam, 686009 Kerala India
| | - Linu Kuruvilla
- Rubber Research Institute of India, Rubber Board P.O., Kottayam, 686009 Kerala India
| | - K. V. Sumesh
- Rubber Research Institute of India, Rubber Board P.O., Kottayam, 686009 Kerala India
| | - K. Annamalainathan
- Rubber Research Institute of India, Rubber Board P.O., Kottayam, 686009 Kerala India
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219
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Qu B, He X, Wang J, Zhao Y, Teng W, Shao A, Zhao X, Ma W, Wang J, Li B, Li Z, Tong Y. A wheat CCAAT box-binding transcription factor increases the grain yield of wheat with less fertilizer input. PLANT PHYSIOLOGY 2015; 167:411-23. [PMID: 25489021 PMCID: PMC4326744 DOI: 10.1104/pp.114.246959] [Citation(s) in RCA: 108] [Impact Index Per Article: 10.8] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 07/17/2014] [Accepted: 12/04/2014] [Indexed: 05/18/2023]
Abstract
Increasing fertilizer consumption has led to low fertilizer use efficiency and environmental problems. Identifying nutrient-efficient genes will facilitate the breeding of crops with improved fertilizer use efficiency. This research performed a genome-wide sequence analysis of the A (NFYA), B (NFYB), and C (NFYC) subunits of Nuclear Factor Y (NF-Y) in wheat (Triticum aestivum) and further investigated their responses to nitrogen and phosphorus availability in wheat seedlings. Sequence mining together with gene cloning identified 18 NFYAs, 34 NFYBs, and 28 NFYCs. The expression of most NFYAs positively responded to low nitrogen and phosphorus availability. In contrast, microRNA169 negatively responded to low nitrogen and phosphorus availability and degraded NFYAs. Overexpressing TaNFYA-B1, a low-nitrogen- and low-phosphorus-inducible NFYA transcript factor on chromosome 6B, significantly increased both nitrogen and phosphorus uptake and grain yield under differing nitrogen and phosphorus supply levels in a field experiment. The increased nitrogen and phosphorus uptake may have resulted from the fact that that overexpressing TaNFYA-B1 stimulated root development and up-regulated the expression of both nitrate and phosphate transporters in roots. Our results suggest that TaNFYA-B1 plays essential roles in root development and in nitrogen and phosphorus usage in wheat. Furthermore, our results provide new knowledge and valuable gene resources that should be useful in efforts to breed crops targeting high yield with less fertilizer input.
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Affiliation(s)
- Baoyuan Qu
- State Key Laboratory for Plant Cell and Chromosome Engineering (B.Q., X.H., Y.Z., W.T., A.S., X.Z., W.M., Ju.W., B.L., Z.L., Y.T.) and National Center for Plant Gene Research (Ji.W.), Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing 100101, China
| | - Xue He
- State Key Laboratory for Plant Cell and Chromosome Engineering (B.Q., X.H., Y.Z., W.T., A.S., X.Z., W.M., Ju.W., B.L., Z.L., Y.T.) and National Center for Plant Gene Research (Ji.W.), Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing 100101, China
| | - Jing Wang
- State Key Laboratory for Plant Cell and Chromosome Engineering (B.Q., X.H., Y.Z., W.T., A.S., X.Z., W.M., Ju.W., B.L., Z.L., Y.T.) and National Center for Plant Gene Research (Ji.W.), Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing 100101, China
| | - Yanyan Zhao
- State Key Laboratory for Plant Cell and Chromosome Engineering (B.Q., X.H., Y.Z., W.T., A.S., X.Z., W.M., Ju.W., B.L., Z.L., Y.T.) and National Center for Plant Gene Research (Ji.W.), Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing 100101, China
| | - Wan Teng
- State Key Laboratory for Plant Cell and Chromosome Engineering (B.Q., X.H., Y.Z., W.T., A.S., X.Z., W.M., Ju.W., B.L., Z.L., Y.T.) and National Center for Plant Gene Research (Ji.W.), Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing 100101, China
| | - An Shao
- State Key Laboratory for Plant Cell and Chromosome Engineering (B.Q., X.H., Y.Z., W.T., A.S., X.Z., W.M., Ju.W., B.L., Z.L., Y.T.) and National Center for Plant Gene Research (Ji.W.), Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing 100101, China
| | - Xueqiang Zhao
- State Key Laboratory for Plant Cell and Chromosome Engineering (B.Q., X.H., Y.Z., W.T., A.S., X.Z., W.M., Ju.W., B.L., Z.L., Y.T.) and National Center for Plant Gene Research (Ji.W.), Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing 100101, China
| | - Wenying Ma
- State Key Laboratory for Plant Cell and Chromosome Engineering (B.Q., X.H., Y.Z., W.T., A.S., X.Z., W.M., Ju.W., B.L., Z.L., Y.T.) and National Center for Plant Gene Research (Ji.W.), Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing 100101, China
| | - Junyi Wang
- State Key Laboratory for Plant Cell and Chromosome Engineering (B.Q., X.H., Y.Z., W.T., A.S., X.Z., W.M., Ju.W., B.L., Z.L., Y.T.) and National Center for Plant Gene Research (Ji.W.), Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing 100101, China
| | - Bin Li
- State Key Laboratory for Plant Cell and Chromosome Engineering (B.Q., X.H., Y.Z., W.T., A.S., X.Z., W.M., Ju.W., B.L., Z.L., Y.T.) and National Center for Plant Gene Research (Ji.W.), Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing 100101, China
| | - Zhensheng Li
- State Key Laboratory for Plant Cell and Chromosome Engineering (B.Q., X.H., Y.Z., W.T., A.S., X.Z., W.M., Ju.W., B.L., Z.L., Y.T.) and National Center for Plant Gene Research (Ji.W.), Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing 100101, China
| | - Yiping Tong
- State Key Laboratory for Plant Cell and Chromosome Engineering (B.Q., X.H., Y.Z., W.T., A.S., X.Z., W.M., Ju.W., B.L., Z.L., Y.T.) and National Center for Plant Gene Research (Ji.W.), Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing 100101, China
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Ma X, Zhu X, Li C, Song Y, Zhang W, Xia G, Wang M. Overexpression of wheat NF-YA10 gene regulates the salinity stress response in Arabidopsis thaliana. PLANT PHYSIOLOGY AND BIOCHEMISTRY : PPB 2015; 86:34-43. [PMID: 25461698 DOI: 10.1016/j.plaphy.2014.11.011] [Citation(s) in RCA: 44] [Impact Index Per Article: 4.4] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 09/08/2014] [Accepted: 11/15/2014] [Indexed: 05/01/2023]
Abstract
The nuclear factor Y (NF-Y) transcription factor is formed by the interaction of three distinct subunits (NF-YA, -YB and -YC). It targets the CCAAT box, a common cis-element in eukaryotic promoters. Here, the bread wheat gene TaNF-YA10-1 has been isolated from the salinity tolerant cultivar SR3. Recombinant TaNF-YA10-1 was heterologously produced in Escherichia coli, and the purified protein successfully bound to the CCAAT motif in vitro. TaNF-YA10-1 was down-regulated by the imposition of salinity and abscisic acid (ABA). The constitutive expression of TaNF-YA10-1 in Arabidopsis thaliana significantly increased the plant's sensitivity to salinity and repressed its sensitivity to ABA as judged from the seed germination, cotyledon greening and the relative root growth. The transcription of stress-related genes AtRAB18, AtRD29B, AtABI5, AtCBF1 and AtCBF3 was downregulated in TaNF-YA10-1 overexpression transgenic plants. The data provide supportive evidence that TaNFYA10-1 is involved in the regulation of growth under salinity stress conditions.
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Affiliation(s)
- Xiaoyan Ma
- The Key Laboratory of Plant Cell Engineering and Germplasm Innovation, Ministry of Education, School of Life Science, Shandong University, Jinan 250100, PR China
| | - Xinlei Zhu
- The Key Laboratory of Plant Cell Engineering and Germplasm Innovation, Ministry of Education, School of Life Science, Shandong University, Jinan 250100, PR China
| | - Chunlong Li
- The Key Laboratory of Plant Cell Engineering and Germplasm Innovation, Ministry of Education, School of Life Science, Shandong University, Jinan 250100, PR China
| | - Yinling Song
- The Key Laboratory of Plant Cell Engineering and Germplasm Innovation, Ministry of Education, School of Life Science, Shandong University, Jinan 250100, PR China
| | - Wei Zhang
- The Key Laboratory of Plant Cell Engineering and Germplasm Innovation, Ministry of Education, School of Life Science, Shandong University, Jinan 250100, PR China
| | - Guangmin Xia
- The Key Laboratory of Plant Cell Engineering and Germplasm Innovation, Ministry of Education, School of Life Science, Shandong University, Jinan 250100, PR China
| | - Mei Wang
- The Key Laboratory of Plant Cell Engineering and Germplasm Innovation, Ministry of Education, School of Life Science, Shandong University, Jinan 250100, PR China.
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221
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Alam MM, Tanaka T, Nakamura H, Ichikawa H, Kobayashi K, Yaeno T, Yamaoka N, Shimomoto K, Takayama K, Nishina H, Nishiguchi M. Overexpression of a rice heme activator protein gene (OsHAP2E) confers resistance to pathogens, salinity and drought, and increases photosynthesis and tiller number. PLANT BIOTECHNOLOGY JOURNAL 2015; 13:85-96. [PMID: 25168932 DOI: 10.1111/pbi.12239] [Citation(s) in RCA: 81] [Impact Index Per Article: 8.1] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 02/17/2014] [Revised: 06/30/2014] [Accepted: 07/06/2014] [Indexed: 06/03/2023]
Abstract
Heme activator protein (HAP), also known as nuclear factor Y or CCAAT binding factor (HAP/NF-Y/CBF), has important functions in regulating plant growth, development and stress responses. The expression of rice HAP gene (OsHAP2E) was induced by probenazole (PBZ), a chemical inducer of disease resistance. To characterize the gene, the chimeric gene (OsHAP2E::GUS) engineered to carry the structural gene encoding β-glucuronidase (GUS) driven by the promoter from OsHAP2E was introduced into rice. The transgenic lines of OsHAP2Ein::GUS with the intron showed high GUS activity in the wounds and surrounding tissues. When treated by salicylic acid (SA), isonicotinic acid (INA), abscisic acid (ABA) and hydrogen peroxide (H2 O2 ), the lines showed GUS activity exclusively in vascular tissues and mesophyll cells. This activity was enhanced after inoculation with Magnaporthe oryzae or Xanthomonas oryzae pv. oryzae. The OsHAP2E expression level was also induced after inoculation of rice with M. oryzae and X. oryzae pv. oryzae and after treatment with SA, INA, ABA and H2 O2, respectively. We further produced transgenic rice overexpressing OsHAP2E. These lines conferred resistance to M. oryzae or X. oryzae pv. oryzae and to salinity and drought. Furthermore, they showed a higher photosynthetic rate and an increased number of tillers. Microarray analysis showed up-regulation of defence-related genes. These results suggest that this gene could contribute to conferring biotic and abiotic resistances and increasing photosynthesis and tiller numbers.
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Affiliation(s)
- Md Mahfuz Alam
- Faculty of Agriculture, United Graduate School of Agricultural Sciences, Ehime University, Matsuyama, Ehime, Japan
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222
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Singh D, Laxmi A. Transcriptional regulation of drought response: a tortuous network of transcriptional factors. FRONTIERS IN PLANT SCIENCE 2015; 6:895. [PMID: 26579147 PMCID: PMC4625044 DOI: 10.3389/fpls.2015.00895] [Citation(s) in RCA: 223] [Impact Index Per Article: 22.3] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Received: 08/15/2015] [Accepted: 10/08/2015] [Indexed: 05/18/2023]
Abstract
Drought is one of the leading factors responsible for the reduction in crop yield worldwide. Due to climate change, in future, more areas are going to be affected by drought and for prolonged periods. Therefore, understanding the mechanisms underlying the drought response is one of the major scientific concerns for improving crop yield. Plants deploy diverse strategies and mechanisms to respond and tolerate drought stress. Expression of numerous genes is modulated in different plants under drought stress that help them to optimize their growth and development. Plant hormone abscisic acid (ABA) plays a major role in plant response and tolerance by regulating the expression of many genes under drought stress. Transcription factors being the major regulator of gene expression play a crucial role in stress response. ABA regulates the expression of most of the target genes through ABA-responsive element (ABRE) binding protein/ABRE binding factor (AREB/ABF) transcription factors. Genes regulated by AREB/ABFs constitute a regulon termed as AREB/ABF regulon. In addition to this, drought responsive genes are also regulated by ABA-independent mechanisms. In ABA-independent regulation, dehydration-responsive element binding protein (DREB), NAM, ATAF, and CUC regulons play an important role by regulating many drought-responsive genes. Apart from these major regulons, MYB/MYC, WRKY, and nuclear factor-Y (NF-Y) transcription factors are also involved in drought response and tolerance. Our understanding about transcriptional regulation of drought is still evolving. Recent reports have suggested the existence of crosstalk between different transcription factors operating under drought stress. In this article, we have reviewed various regulons working under drought stress and their crosstalk with each other.
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223
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Sato H, Mizoi J, Tanaka H, Maruyama K, Qin F, Osakabe Y, Morimoto K, Ohori T, Kusakabe K, Nagata M, Shinozaki K, Yamaguchi-Shinozaki K. Arabidopsis DPB3-1, a DREB2A interactor, specifically enhances heat stress-induced gene expression by forming a heat stress-specific transcriptional complex with NF-Y subunits. THE PLANT CELL 2014; 26:4954-73. [PMID: 25490919 PMCID: PMC4311209 DOI: 10.1105/tpc.114.132928] [Citation(s) in RCA: 113] [Impact Index Per Article: 10.3] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 10/08/2014] [Revised: 10/08/2014] [Accepted: 11/17/2014] [Indexed: 05/18/2023]
Abstract
DEHYDRATION-RESPONSIVE ELEMENT BINDING PROTEIN2A (DREB2A) is a key transcription factor for drought and heat stress tolerance in Arabidopsis thaliana. DREB2A induces the expression of dehydration- and heat stress-inducible genes under the corresponding stress conditions. Target gene selectivity is assumed to require stress-specific posttranslational regulation, but the mechanisms of this process are not yet understood. Here, we identified DNA POLYMERASE II SUBUNIT B3-1 (DPB3-1), which was previously annotated as NUCLEAR FACTOR Y, SUBUNIT C10 (NF-YC10), as a DREB2A interactor, through a yeast two-hybrid screen. The overexpression of DPB3-1 in Arabidopsis enhanced the expression of a subset of heat stress-inducible DREB2A target genes but did not affect dehydration-inducible genes. Similarly, the depletion of DPB3-1 expression resulted in reduced expression of heat stress-inducible genes. Interaction and expression pattern analyses suggested the existence of a trimer comprising NF-YA2, NF-YB3, and DPB3-1 that could synergistically activate a promoter of the heat stress-inducible gene with DREB2A in protoplasts. These results suggest that DPB3-1 could form a transcriptional complex with NF-YA and NF-YB subunits and that the identified trimer enhances heat stress-inducible gene expression during heat stress responses in cooperation with DREB2A. We propose that the identified trimer contributes to the target gene selectivity of DREB2A under heat stress conditions.
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Affiliation(s)
- Hikaru Sato
- Graduate School of Agricultural and Life Sciences, University of Tokyo, Tokyo 113-8657, Japan
| | - Junya Mizoi
- Graduate School of Agricultural and Life Sciences, University of Tokyo, Tokyo 113-8657, Japan
| | - Hidenori Tanaka
- Graduate School of Agricultural and Life Sciences, University of Tokyo, Tokyo 113-8657, Japan
| | - Kyonosin Maruyama
- Biological Resources and Post-harvest Division, Japan International Research Center for Agricultural Sciences, Tsukuba 305-8686, Japan
| | - Feng Qin
- Biological Resources and Post-harvest Division, Japan International Research Center for Agricultural Sciences, Tsukuba 305-8686, Japan
| | - Yuriko Osakabe
- Graduate School of Agricultural and Life Sciences, University of Tokyo, Tokyo 113-8657, Japan
| | - Kyoko Morimoto
- Graduate School of Agricultural and Life Sciences, University of Tokyo, Tokyo 113-8657, Japan
| | - Teppei Ohori
- Graduate School of Agricultural and Life Sciences, University of Tokyo, Tokyo 113-8657, Japan
| | - Kazuya Kusakabe
- Graduate School of Agricultural and Life Sciences, University of Tokyo, Tokyo 113-8657, Japan
| | - Maika Nagata
- Graduate School of Agricultural and Life Sciences, University of Tokyo, Tokyo 113-8657, Japan
| | - Kazuo Shinozaki
- RIKEN Center for Sustainable Resource Science, Tsurumi-ku, Yokohama 230-0045, Japan
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224
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Xu L, Lin Z, Tao Q, Liang M, Zhao G, Yin X, Fu R. Multiple NUCLEAR FACTOR Y transcription factors respond to abiotic stress in Brassica napus L. PLoS One 2014; 9:e111354. [PMID: 25356551 PMCID: PMC4214726 DOI: 10.1371/journal.pone.0111354] [Citation(s) in RCA: 28] [Impact Index Per Article: 2.5] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 07/16/2014] [Accepted: 09/24/2014] [Indexed: 11/18/2022] Open
Abstract
Members of the plant NUCLEAR FACTOR Y (NF-Y) family are composed of the NF-YA, NF-YB, and NF-YC subunits. In Brassica napus (canola), each of these subunits forms a multimember subfamily. Plant NF-Ys were reported to be involved in several abiotic stresses. In this study, we demonstrated that multiple members of thirty three BnNF-Ys responded rapidly to salinity, drought, or ABA treatments. Transcripts of five BnNF-YAs, seven BnNF-YBs, and two BnNF-YCs were up-regulated by salinity stress, whereas the expression of thirteen BnNF-YAs, ten BnNF-YBs, and four BnNF-YCs were induced by drought stress. Under NaCl treatments, the expression of one BnNF-YA10 and four NF-YBs (BnNF-YB3, BnNF-YB7, BnNF-YB10, and BnNF-YB14) were greatly increased. Under PEG treatments, the expression levels of four NF-YAs (BnNF-YA9, BnNF-YA10, BnNF-YA11, and BnNF-YA12) and five NF-YBs (BnNF-YB1, BnNF-YB8, BnNF-YB10, BnNF-YB13, and BnNF-YB14) were greatly induced. The expression profiles of 20 of the 27 salinity- or drought-induced BnNF-Ys were also affected by ABA treatment. The expression levels of six NF-YAs (BnNF-YA1, BnNF-YA7, BnNF-YA8, BnNF-YA9, BnNF-YA10, and BnNF-YA12) and seven BnNF-YB members (BnNF-YB2, BnNF-YB3, BnNF-YB7, BnNF-YB10, BnNF-YB11, BnNF-YB13, and BnNF-YB14) and two NF-YC members (BnNF-YC2 and BnNF-YC3) were greatly up-regulated by ABA treatments. Only a few BnNF-Ys were inhibited by the above three treatments. Several NF-Y subfamily members exhibited collinear expression patterns. The promoters of all stress-responsive BnNF-Ys harbored at least two types of stress-related cis-elements, such as ABRE, DRE, MYB, or MYC. The cis-element organization of BnNF-Ys was similar to that of Arabidopsis thaliana, and the promoter regions exhibited higher levels of nucleotide sequence identity with Brassica rapa than with Brassica oleracea. This work represents an entry point for investigating the roles of canola NF-Y proteins during abiotic stress responses and provides insight into the genetic evolution of Brassica NF-Ys.
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Affiliation(s)
- Li Xu
- College of Resources and Environmental Sciences, Nanjing Agricultural University, Nanjing, China
| | - Zhongyuan Lin
- College of Resources and Environmental Sciences, Nanjing Agricultural University, Nanjing, China
- Jiangsu Key Lab of Marine Biology, Nanjing, China
| | - Qing Tao
- College of Resources and Environmental Sciences, Nanjing Agricultural University, Nanjing, China
- Jiangsu Key Lab of Marine Biology, Nanjing, China
| | - Mingxiang Liang
- College of Resources and Environmental Sciences, Nanjing Agricultural University, Nanjing, China
- Jiangsu Key Lab of Marine Biology, Nanjing, China
- * E-mail:
| | - Gengmao Zhao
- College of Resources and Environmental Sciences, Nanjing Agricultural University, Nanjing, China
- Jiangsu Key Lab of Marine Biology, Nanjing, China
| | - Xiangzhen Yin
- College of Resources and Environmental Sciences, Nanjing Agricultural University, Nanjing, China
- Jiangsu Key Lab of Marine Biology, Nanjing, China
| | - Ruixin Fu
- College of Resources and Environmental Sciences, Nanjing Agricultural University, Nanjing, China
- Jiangsu Key Lab of Marine Biology, Nanjing, China
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225
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Zhang M, Ma CY, Lv DW, Zhen SM, Li XH, Yan YM. Comparative phosphoproteome analysis of the developing grains in bread wheat (Triticum aestivum L.) under well-watered and water-deficit conditions. J Proteome Res 2014; 13:4281-97. [PMID: 25145454 DOI: 10.1021/pr500400t] [Citation(s) in RCA: 47] [Impact Index Per Article: 4.3] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/31/2022]
Abstract
Wheat (Triticum aestivum), one of the most important cereal crops, is often threatened by drought. In this study, water deficit significantly reduced the height of plants and yield of grains. To explore further the effect of drought stress on the development and yield of grains, we first performed a large scale phosphoproteome analysis of developing grains in wheat. A total of 590 unique phosphopeptides, representing 471 phosphoproteins, were identified under well-watered conditions. Motif-X analysis showed that four motifs were enriched, including [sP], [Rxxs], [sDxE], and [sxD]. Through comparative phosphoproteome analysis between well-watered and water-deficit conditions, we found that 63 unique phosphopeptides, corresponding to 61 phosphoproteins, showed significant changes in phosphorylation level (≥2-fold intensities). Functional analysis suggested that some of these proteins may be involved in signal transduction, embryo and endosperm development of grains, and drought response and defense under water-deficit conditions. Moreover, we also found that some chaperones may play important roles in protein refolding or degradation when the plant is subjected to water stress. These results provide a detailed insight into the stress response and defense mechanisms of developmental grains at the phosphoproteome level. They also suggested some potential candidates for further study of transgenosis and drought stress as well as incorporation into molecular breeding for drought resistance.
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Affiliation(s)
- Ming Zhang
- College of Life Science, Capital Normal University , 100048 Beijing, China
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226
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Sun X, Ling S, Lu Z, Ouyang YD, Liu S, Yao J. OsNF-YB1, a rice endosperm-specific gene, is essential for cell proliferation in endosperm development. Gene 2014; 551:214-21. [PMID: 25178525 DOI: 10.1016/j.gene.2014.08.059] [Citation(s) in RCA: 40] [Impact Index Per Article: 3.6] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 05/25/2014] [Revised: 08/19/2014] [Accepted: 08/28/2014] [Indexed: 12/23/2022]
Abstract
Cell cycle regulators are crucial for normal endosperm development and seed size determination. However, how the cell cycle related genes regulate endosperm development remains unclear. In this study, we reported a rice Nuclear Factor Y (NF-Y) gene OsNF-YB1, which was also identified as an endosperm-specific gene. Transcriptional profiling and promoter analysis revealed that OsNF-YB1 was highly expressed at the early stages of rice endosperm development (5-7 DAP, days after pollination). Repression of OsNF-YB1 resulted in differential expression of the genes in cell cycle pathway, which caused abnormal seeds with defected embryo and endosperm. Basic cytological analysis demonstrated that the reduced endosperm cell numbers disintegrated with the development of those abnormal seeds in OsNF-YB1 RNAi plants. Taken together, these results suggested that the endosperm-specific gene OsNF-YB1 might be a cell cycle regulator and played a role in maintaining the endosperm cell proliferation.
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Affiliation(s)
- Xiaocong Sun
- College of Life Science and Technology, Huazhong Agricultural University, Wuhan, 430070, China
| | - Sheng Ling
- College of Life Science and Technology, Huazhong Agricultural University, Wuhan, 430070, China
| | - Zhanhua Lu
- College of Plant Science and Technology, Huazhong Agricultural University, Wuhan, 430070, China
| | - Yi-Dan Ouyang
- College of Life Science and Technology, Huazhong Agricultural University, Wuhan, 430070, China
| | - Shasha Liu
- College of Life Science and Technology, Huazhong Agricultural University, Wuhan, 430070, China
| | - Jialing Yao
- College of Life Science and Technology, Huazhong Agricultural University, Wuhan, 430070, China.
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227
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Soyano T, Hayashi M. Transcriptional networks leading to symbiotic nodule organogenesis. CURRENT OPINION IN PLANT BIOLOGY 2014; 20:146-54. [PMID: 25113465 DOI: 10.1016/j.pbi.2014.07.010] [Citation(s) in RCA: 32] [Impact Index Per Article: 2.9] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 03/16/2014] [Revised: 07/17/2014] [Accepted: 07/18/2014] [Indexed: 05/08/2023]
Abstract
The symbiosis with nitrogen-fixing bacteria leading to root nodules is a relatively recent evolutionary innovation and limited to a distinct order of land plants. It has long been a mystery how plants have invented this complex trait. However, recent advances in molecular genetics of model legumes has elucidated genes involved in the development of root nodules, providing insights into this process. Here we discuss how the de novo assembly of transcriptional networks may account for the predisposition to nodulate. Transcriptional networks and modes of gene regulation from the arbuscular mycorrhizal symbiosis, nitrate responses and aspects of lateral root development have likely all contributed to the emergence and development of root nodules.
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Affiliation(s)
- Takashi Soyano
- Plant Symbiosis Research Unit, National Institute of Agrobiological Sciences, Tsukuba, Ibaraki 305-3602, Japan
| | - Makoto Hayashi
- Plant Symbiosis Research Unit, National Institute of Agrobiological Sciences, Tsukuba, Ibaraki 305-3602, Japan.
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228
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Shi H, Ye T, Zhong B, Liu X, Jin R, Chan Z. AtHAP5A modulates freezing stress resistance in Arabidopsis through binding to CCAAT motif of AtXTH21. THE NEW PHYTOLOGIST 2014; 203:554-567. [PMID: 24739069 DOI: 10.1111/nph.12812] [Citation(s) in RCA: 75] [Impact Index Per Article: 6.8] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 02/11/2014] [Accepted: 03/15/2014] [Indexed: 05/20/2023]
Abstract
Several eukaryotic Heme-associated proteins (HAPs) have been reported to bind specifically to DNA fragments containing CCAAT-box; however, the physiological functions and direct targets of these HAP proteins in plants remain unclear. In this study, we showed that AtHAP5A as a transcription factor interacted with CCAAT motif in vivo, and AtXTH21, one direct target of AtHAP5A, was involved in freezing stress resistance. The AtHAP5A overexpressing plants were more tolerant, whereas the loss-of-function mutant of AtHAP5A was more sensitive to freezing stress than wild-type plants. Chromatin immunoprecipitation (ChIP) assay demonstrated that AtHAP5A could bind to five fragments that contained CCAAT motifs in the AtXTH21 promoter. Similarly, the AtXTH21 overexpressing plants exhibited improved freezing resistance, while xth21 knockdown mutants displayed decreased freezing resistance. Notably, the modulated freezing resistance of AtHAP5A overexpressing plants and knockout mutant could be reversed by the xth21 mutant and AtXTH21 overexpressing plants, respectively, indicating that AtHAP5A might act upstream of AtXTH21 in freezing stress. Additionally, modulation of AtHAP5A and AtXTH21 expression had the same effects on abscisic acid (ABA) sensitivity and reactive oxygen species (ROS) metabolism. Taken together, these results demonstrated that AtHAP5A modulates freezing stress resistance in Arabidopsis through binding to the CCAAT motif of AtXTH21.
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Affiliation(s)
- Haitao Shi
- Key Laboratory of Plant Germplasm Enhancement and Specialty Agriculture, Wuhan Botanical Garden, Chinese Academy of Sciences, Wuhan, 430074, China
| | - Tiantian Ye
- Key Laboratory of Plant Germplasm Enhancement and Specialty Agriculture, Wuhan Botanical Garden, Chinese Academy of Sciences, Wuhan, 430074, China
- University of Chinese Academy of Sciences, Beijing, 100039, China
| | - Bao Zhong
- Key Laboratory of Plant Germplasm Enhancement and Specialty Agriculture, Wuhan Botanical Garden, Chinese Academy of Sciences, Wuhan, 430074, China
- University of Chinese Academy of Sciences, Beijing, 100039, China
| | - Xun Liu
- Key Laboratory of Plant Germplasm Enhancement and Specialty Agriculture, Wuhan Botanical Garden, Chinese Academy of Sciences, Wuhan, 430074, China
- University of Chinese Academy of Sciences, Beijing, 100039, China
| | - Rui Jin
- Key Laboratory of Plant Germplasm Enhancement and Specialty Agriculture, Wuhan Botanical Garden, Chinese Academy of Sciences, Wuhan, 430074, China
- University of Chinese Academy of Sciences, Beijing, 100039, China
| | - Zhulong Chan
- Key Laboratory of Plant Germplasm Enhancement and Specialty Agriculture, Wuhan Botanical Garden, Chinese Academy of Sciences, Wuhan, 430074, China
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229
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Sorin C, Declerck M, Christ A, Blein T, Ma L, Lelandais-Brière C, Njo MF, Beeckman T, Crespi M, Hartmann C. A miR169 isoform regulates specific NF-YA targets and root architecture in Arabidopsis. THE NEW PHYTOLOGIST 2014; 202:1197-1211. [PMID: 24533947 DOI: 10.1111/nph.12735] [Citation(s) in RCA: 138] [Impact Index Per Article: 12.5] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 11/18/2013] [Accepted: 01/21/2014] [Indexed: 05/20/2023]
Abstract
In plants, roots are essential for water and nutrient acquisition. MicroRNAs (miRNAs) regulate their target mRNAs by transcript cleavage and/or inhibition of protein translation and are known as major post-transcriptional regulators of various developmental pathways and stress responses. In Arabidopsis thaliana, four isoforms of miR169 are encoded by 14 different genes and target diverse mRNAs, encoding subunits A of the NF-Y transcription factor complex. These miRNA isoforms and their targets have previously been linked to nutrient signalling in plants. By using mimicry constructs against different isoforms of miR169 and miR-resistant versions of NF-YA genes we analysed the role of specific miR169 isoforms in root growth and branching. We identified a regulatory node involving the particular miR169defg isoform and NF-YA2 and NF-YA10 genes that acts in the control of primary root growth. The specific expression of MIM169defg constructs altered specific cell type numbers and dimensions in the root meristem. Preventing miR169defg-regulation of NF-YA2 indirectly affected laterial root initiation. We also showed that the miR169defg isoform affects NF-YA2 transcripts both at mRNA stability and translation levels. We propose that a specific miR169 isoform and the NF-YA2 target control root architecture in Arabidopsis.
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Affiliation(s)
- Céline Sorin
- Institut des Sciences du Végétal (ISV), CNRS, UPR2355, Saclay Plant Sciences, F-91198, Gif-sur-Yvette Cedex, France
- Université Paris Diderot, Sorbonne Paris Cité, F-75205, Paris Cedex 13, France
| | - Marie Declerck
- Institut des Sciences du Végétal (ISV), CNRS, UPR2355, Saclay Plant Sciences, F-91198, Gif-sur-Yvette Cedex, France
| | - Aurélie Christ
- Institut des Sciences du Végétal (ISV), CNRS, UPR2355, Saclay Plant Sciences, F-91198, Gif-sur-Yvette Cedex, France
| | - Thomas Blein
- Institut des Sciences du Végétal (ISV), CNRS, UPR2355, Saclay Plant Sciences, F-91198, Gif-sur-Yvette Cedex, France
- INRA, Institut JP Bourgin, Route de Saint-Cyr, 78026, Versailles Cedex, France
| | - Linnan Ma
- Institut des Sciences du Végétal (ISV), CNRS, UPR2355, Saclay Plant Sciences, F-91198, Gif-sur-Yvette Cedex, France
| | - Christine Lelandais-Brière
- Institut des Sciences du Végétal (ISV), CNRS, UPR2355, Saclay Plant Sciences, F-91198, Gif-sur-Yvette Cedex, France
- Université Paris Diderot, Sorbonne Paris Cité, F-75205, Paris Cedex 13, France
| | - Maria Fransiska Njo
- Department of Plant Systems Biology, Flanders Institute for Biotechnology, Technologiepark 927, 9052, Ghent, Belgium
- Department Plant Biotechnology and Bioinformatics, Ghent University, Technologiepark 927, 9052, Ghent, Belgium
| | - Tom Beeckman
- Department of Plant Systems Biology, Flanders Institute for Biotechnology, Technologiepark 927, 9052, Ghent, Belgium
- Department Plant Biotechnology and Bioinformatics, Ghent University, Technologiepark 927, 9052, Ghent, Belgium
| | - Martin Crespi
- Institut des Sciences du Végétal (ISV), CNRS, UPR2355, Saclay Plant Sciences, F-91198, Gif-sur-Yvette Cedex, France
| | - Caroline Hartmann
- Institut des Sciences du Végétal (ISV), CNRS, UPR2355, Saclay Plant Sciences, F-91198, Gif-sur-Yvette Cedex, France
- Université Paris Diderot, Sorbonne Paris Cité, F-75205, Paris Cedex 13, France
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230
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The carbon-nitrogen balance of the nodule and its regulation under elevated carbon dioxide concentration. BIOMED RESEARCH INTERNATIONAL 2014; 2014:507946. [PMID: 24987690 PMCID: PMC4058508 DOI: 10.1155/2014/507946] [Citation(s) in RCA: 15] [Impact Index Per Article: 1.4] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Subscribe] [Scholar Register] [Received: 03/24/2014] [Accepted: 05/03/2014] [Indexed: 01/06/2023]
Abstract
Legumes have developed a unique way to interact with bacteria: in addition to preventing infection from pathogenic bacteria like any other plant, legumes also developed a mutualistic symbiotic relationship with one gender of soil bacteria: rhizobium. This interaction leads to the development of a new root organ, the nodule, where the differentiated bacteria fix for the plant the atmospheric dinitrogen (atmN2). In exchange, the symbiont will benefit from a permanent source of carbon compounds, products of the photosynthesis. The substantial amounts of fixed carbon dioxide dedicated to the symbiont imposed to the plant a tight regulation of the nodulation process to balance carbon and nitrogen incomes and outcomes. Climate change including the increase of the concentration of the atmospheric carbon dioxide is going to modify the rates of plant photosynthesis, the balance between nitrogen and carbon, and, as a consequence, the regulatory mechanisms of the nodulation process. This review focuses on the regulatory mechanisms controlling carbon/nitrogen balances in the context of legume nodulation and discusses how the change in atmospheric carbon dioxide concentration could affect nodulation efficiency.
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231
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Hilioti Z, Ganopoulos I, Bossis I, Tsaftaris A. LEC1-LIKE paralog transcription factor: how to survive extinction and fit in NF-Y protein complex. Gene 2014; 543:220-33. [PMID: 24727055 DOI: 10.1016/j.gene.2014.04.019] [Citation(s) in RCA: 11] [Impact Index Per Article: 1.0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 02/03/2014] [Revised: 04/04/2014] [Accepted: 04/09/2014] [Indexed: 11/16/2022]
Abstract
Transcription factor function is crucial for eukaryotic systems. The presence of transcription factor families in genomes represents a significant technical challenge for functional studies. To understand their function, we must understand how they evolved and maintained by organisms. Based on genome scale searches for homologs of LEAFY COTYLEDON-LIKE (L1L; AtNF-YB6), NF-YB transcription factor, we report the discovery and annotation of a complete repertoire of thirteen novel genes that belong to the L1L paralogous gene family of Solanum lycopersicum. Gene duplication events within the species resulted in the expansion of the L1L family. Sequence and structure-based phylogenetic analyses revealed two distinct groups of L1Ls in tomato. Natural selection appears to have contributed to the asymmetric evolution of paralogs. Our results point to key differences among SlL1L paralogs in the presence of motifs, structural features, cysteine composition and expression patterns during plant and fruit development. Furthermore, differences in the binding domains of L1L members suggest that some of them evolved new binding specificities. These results reveal dramatic functional diversification of L1L paralogs for their maintenance in tomato genome. Our comprehensive insights on tomato L1L family should provide the basis for further functional and genetic experimentation.
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Affiliation(s)
- Zoe Hilioti
- Institute of Applied Biosciences, CERTH, Thermi 57001, Thessaloniki, Greece.
| | - Ioannis Ganopoulos
- Institute of Applied Biosciences, CERTH, Thermi 57001, Thessaloniki, Greece; Department of Genetics and Plant Breeding, Aristotle University of Thessaloniki, Thessaloniki 54124, Greece.
| | - Ioannis Bossis
- Institute of Applied Biosciences, CERTH, Thermi 57001, Thessaloniki, Greece; Department of Veterinary Medicine, University of Maryland, 8075 Greenmead Drive, Avrum Gudelski Building, College Park, MD 20742, USA.
| | - Athanasios Tsaftaris
- Institute of Applied Biosciences, CERTH, Thermi 57001, Thessaloniki, Greece; Department of Genetics and Plant Breeding, Aristotle University of Thessaloniki, Thessaloniki 54124, Greece.
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232
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Battaglia M, Rípodas C, Clúa J, Baudin M, Aguilar OM, Niebel A, Zanetti ME, Blanco FA. A nuclear factor Y interacting protein of the GRAS family is required for nodule organogenesis, infection thread progression, and lateral root growth. PLANT PHYSIOLOGY 2014; 164:1430-42. [PMID: 24424321 PMCID: PMC3938631 DOI: 10.1104/pp.113.230896] [Citation(s) in RCA: 40] [Impact Index Per Article: 3.6] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 05/07/2023]
Abstract
A C subunit of the heterotrimeric nuclear factor Y (NF-YC1) was shown to play a key role in nodule organogenesis and bacterial infection during the nitrogen fixing symbiosis established between common bean (Phaseolus vulgaris) and Rhizobium etli. To identify other proteins involved in this process, we used the yeast (Saccharomyces cerevisiae) two-hybrid system to screen for NF-YC1-interacting proteins. One of the positive clones encodes a member of the Phytochrome A Signal Transduction1 subfamily of GRAS (for Gibberellic Acid-Insensitive (GAI), Repressor of GAI, and Scarecrow) transcription factors. The protein, named Scarecrow-like13 Involved in Nodulation (SIN1), localizes both to the nucleus and the cytoplasm, but in transgenic Nicotiana benthamiana cells, bimolecular fluorescence complementation suggested that the interaction with NF-YC1 takes place predominantly in the nucleus. SIN1 is expressed in aerial and root tissues, with higher levels in roots and nodules. Posttranscriptional gene silencing of SIN1 using RNA interference (RNAi) showed that the product of this gene is involved in lateral root elongation. However, root cell organization, density of lateral roots, and the length of root hairs were not affected by SIN1 RNAi. In addition, the expression of the RNAi of SIN1 led to a marked reduction in the number and size of nodules formed upon inoculation with R. etli and affected the progression of infection threads toward the nodule primordia. Expression of NF-YA1 and the G2/M transition cell cycle genes Cyclin B and Cell Division Cycle2 was reduced in SIN1 RNAi roots. These data suggest that SIN1 plays a role in lateral root elongation and the establishment of root symbiosis in common bean.
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233
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Cao S, Kumimoto RW, Gnesutta N, Calogero AM, Mantovani R, Holt BF. A distal CCAAT/NUCLEAR FACTOR Y complex promotes chromatin looping at the FLOWERING LOCUS T promoter and regulates the timing of flowering in Arabidopsis. THE PLANT CELL 2014; 26:1009-17. [PMID: 24610724 PMCID: PMC4001365 DOI: 10.1105/tpc.113.120352] [Citation(s) in RCA: 199] [Impact Index Per Article: 18.1] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 05/16/2023]
Abstract
For many plant species, reproductive success relies on the proper timing of flowering, and photoperiod provides a key environmental input. Photoperiod-dependent flowering depends on timely expression of FLOWERING LOCUS T (FT); however, the coordination of various cis-regulatory elements in the FT promoter is not well understood. Here, we provide evidence that long-distance chromatin loops bring distal enhancer elements into close association with the proximal promoter elements bound by CONSTANS (CO). Additionally, we show that NUCLEAR FACTOR Y (NF-Y) binds a CCAAT box in the distal enhancer element and that CCAAT disruption dramatically reduces FT promoter activity. Thus, we propose the recruitment model of photoperiod-dependent flowering where NF-Y complexes, bound at the FT distal enhancer element, help recruit CO to proximal cis-regulatory elements and initiate the transition to reproductive growth.
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Affiliation(s)
- Shuanghe Cao
- Department of Microbiology and Plant Biology, University
of Oklahoma, Norman, Oklahoma 73019
| | - Roderick W. Kumimoto
- Department of Microbiology and Plant Biology, University
of Oklahoma, Norman, Oklahoma 73019
| | - Nerina Gnesutta
- Dipartimento di BioScienze, Università degli Studi
di Milano, 20133 Milan, Italy
| | | | - Roberto Mantovani
- Dipartimento di BioScienze, Università degli Studi
di Milano, 20133 Milan, Italy
| | - Ben F. Holt
- Department of Microbiology and Plant Biology, University
of Oklahoma, Norman, Oklahoma 73019
- Address correspondence to
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234
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Laporte P, Lepage A, Fournier J, Catrice O, Moreau S, Jardinaud MF, Mun JH, Larrainzar E, Cook DR, Gamas P, Niebel A. The CCAAT box-binding transcription factor NF-YA1 controls rhizobial infection. JOURNAL OF EXPERIMENTAL BOTANY 2014; 65:481-94. [PMID: 24319255 PMCID: PMC3904707 DOI: 10.1093/jxb/ert392] [Citation(s) in RCA: 88] [Impact Index Per Article: 8.0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 05/03/2023]
Abstract
Symbiosis between legume plants and soil rhizobia culminates in the formation of a novel root organ, the 'nodule', containing bacteria differentiated as facultative nitrogen-fixing organelles. MtNF-YA1 is a Medicago truncatula CCAAT box-binding transcription factor (TF), formerly called HAP2-1, highly expressed in mature nodules and required for nodule meristem function and persistence. Here a role for MtNF-YA1 during early nodule development is demonstrated. Detailed expression analysis based on RNA sequencing, quantitiative real-time PCR (qRT-PCR), as well as promoter-β-glucuronidase (GUS) fusions reveal that MtNF-YA1 is first induced at the onset of symbiotic development during preparation for, and initiation and progression of, symbiotic infection. Moreover, using a new knock-out mutant, Mtnf-ya1-1, it is shown that MtNF-YA1 controls infection thread (IT) progression from initial root infection through colonization of nodule tissues. Extensive confocal and electronic microscopic observations suggest that the bulbous and erratic IT growth phenotypes observed in Mtnf-ya1-1 could be a consequence of the fact that walls of ITs in this mutant are thinner and less coherent than in the wild type. It is proposed that MtNF-YA1 controls rhizobial infection progression by regulating the formation and the wall of ITs.
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Affiliation(s)
- Philippe Laporte
- INRA, Laboratoire des Interactions Plantes-Microorganismes (LIPM), UMR441, Castanet-Tolosan, F-31326, France
- CNRS, Laboratoire des Interactions Plantes-Microorganismes (LIPM), UMR2594, Castanet-Tolosan, F-31326, France
| | - Agnes Lepage
- INRA, Laboratoire des Interactions Plantes-Microorganismes (LIPM), UMR441, Castanet-Tolosan, F-31326, France
- CNRS, Laboratoire des Interactions Plantes-Microorganismes (LIPM), UMR2594, Castanet-Tolosan, F-31326, France
| | - Joëlle Fournier
- INRA, Laboratoire des Interactions Plantes-Microorganismes (LIPM), UMR441, Castanet-Tolosan, F-31326, France
- CNRS, Laboratoire des Interactions Plantes-Microorganismes (LIPM), UMR2594, Castanet-Tolosan, F-31326, France
| | - Olivier Catrice
- INRA, Laboratoire des Interactions Plantes-Microorganismes (LIPM), UMR441, Castanet-Tolosan, F-31326, France
- CNRS, Laboratoire des Interactions Plantes-Microorganismes (LIPM), UMR2594, Castanet-Tolosan, F-31326, France
| | - Sandra Moreau
- INRA, Laboratoire des Interactions Plantes-Microorganismes (LIPM), UMR441, Castanet-Tolosan, F-31326, France
- CNRS, Laboratoire des Interactions Plantes-Microorganismes (LIPM), UMR2594, Castanet-Tolosan, F-31326, France
| | - Marie-Françoise Jardinaud
- INRA, Laboratoire des Interactions Plantes-Microorganismes (LIPM), UMR441, Castanet-Tolosan, F-31326, France
- CNRS, Laboratoire des Interactions Plantes-Microorganismes (LIPM), UMR2594, Castanet-Tolosan, F-31326, France
- INPT-Université de TOULOUSE, ENSAT-Avenue de l’Agrobiopole, Auzeville-Tolosane, 31326-Castanet-Tolosan Cedex, France
| | - Jeong-Hwan Mun
- Department of Agricultural Biotechnology, National Academy of Agricultural Science, Rural Development Administration, 150 Suin-ro, Gwonseon-gu, Suwon 441-707, Korea
- Department of Bioscience and Bioinformatics, College of Natural Science, Myongji University, Seoul, Korea
| | - Estibaliz Larrainzar
- Department of Plant Pathology, University of California, Davis, CA 95616, USA
- * Present adresss: Dpto. Ciencias del Medio Natural, Universidad Pública de Navarra, CampusArrosadia 31006 Pamplona, Spain
| | - Douglas R. Cook
- Department of Plant Pathology, University of California, Davis, CA 95616, USA
| | - Pascal Gamas
- INRA, Laboratoire des Interactions Plantes-Microorganismes (LIPM), UMR441, Castanet-Tolosan, F-31326, France
- CNRS, Laboratoire des Interactions Plantes-Microorganismes (LIPM), UMR2594, Castanet-Tolosan, F-31326, France
| | - Andreas Niebel
- INRA, Laboratoire des Interactions Plantes-Microorganismes (LIPM), UMR441, Castanet-Tolosan, F-31326, France
- CNRS, Laboratoire des Interactions Plantes-Microorganismes (LIPM), UMR2594, Castanet-Tolosan, F-31326, France
- To whom correspondence should be addressed. E-mail:
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235
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Liang M, Yin X, Lin Z, Zheng Q, Liu G, Zhao G. Identification and characterization of NF-Y transcription factor families in Canola (Brassica napus L.). PLANTA 2014; 239:107-26. [PMID: 24097262 DOI: 10.1007/s00425-013-1964-3] [Citation(s) in RCA: 18] [Impact Index Per Article: 1.6] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 08/25/2013] [Accepted: 09/16/2013] [Indexed: 05/10/2023]
Abstract
NF-Y (NUCLEAR FACTOR-Y), a heterotrimeric transcription factor, is composed of NF-YA, NF-YB, and NF-YC proteins in yeast, animal, and plant systems. In plants, each of the NF-YA/B/C subunit forms a multi-member family. NF-Ys are key regulators with important roles in many physiological processes, such as drought tolerance, flowering time, and seed development. In this study, we identified, annotated, and further characterized 14 NF-YA, 14 NF-YB, and 5 NF-YC proteins in Brassica napus (canola). Phylogenetic analysis revealed that the NF-YA/B/C subunits were more closely clustered with the Arabidopsis thaliana (Arabidopsis) homologs than with rice OsHAP2/3/5 subunits. Analyses of the conserved domain indicated that the BnNF-YA/B/C subfamilies, respectively, shared the same conserved domains with those in other organisms, including Homo sapiens, Saccharomyces cerevisiae, Arabidopsis, and Oryza sativa (rice). An examination of exon/intron structures revealed that most gene structures of BnNF-Y were similar to their homologs in Arabidopsis, a model dicot plant, but different from those in the model monocot plant rice, suggesting that plant NF-Ys diverged before monocot and dicot plants differentiated. Spatial-tempo expression patterns, as determined by qRT-PCR, showed that most BnNF-Ys were widely expressed in different tissues throughout the canola life cycle and that several closely related BnNF-Y subunits had similar expression profiles. Based on these findings, we predict that BnNF-Y proteins have functions that are conserved in the homologous proteins in other plants. This study provides the first extensive evaluation of the BnNF-Y family, and provides a useful foundation for dissecting the functions of BnNF-Y.
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Affiliation(s)
- Mingxiang Liang
- College of Resources and Environmental Sciences, Nanjing Agricultural University, Tongwei Road 6, Xuanwu District, Nanjing, 210095, Jiangsu Province, China,
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236
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Shi H, Chan ZL. AtHAP5A modulates freezing stress resistance in Arabidopsis independent of the CBF pathway. PLANT SIGNALING & BEHAVIOR 2014; 9:e29109. [PMID: 25763489 PMCID: PMC4203585 DOI: 10.4161/psb.29109] [Citation(s) in RCA: 6] [Impact Index Per Article: 0.5] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 04/30/2014] [Accepted: 05/04/2014] [Indexed: 05/22/2023]
Abstract
The heme-associated proteins (HAPs, also known as nuclear factor y, subunit A/B/C (NF-YA/B/C)) have been reported to bind specifically to DNA fragments containing CCAAT-box, however, the physiological functions and direct targets of these HAP proteins remain unclear in plants. In our recent study, we found that AtHAP5A and AtXTH21 positively modulated freezing stress resistance, and chromatin immunoprecipitation (ChIP) assay and genetic evidence indicated that AtHAP5A might act in the upstream of AtXTH21 in freezing stress. Moreover, AtHAP5A and AtXTH21 had significant effects on inhibiting cold stress-induced reactive oxygen species (ROS) accumulation and activating ABA-related genes' expression. Thus, a possible model that depicting AtHAP5A-mediated cold stress responses was proposed in this study, and we highlighted that AtHAP5A modulates freezing stress resistance in Arabidopsis through binding to CCAAT motif of AtXTH21, which is independent of the CBF pathway.
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237
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Verslues PE, Lasky JR, Juenger TE, Liu TW, Kumar MN. Genome-wide association mapping combined with reverse genetics identifies new effectors of low water potential-induced proline accumulation in Arabidopsis. PLANT PHYSIOLOGY 2014; 164:144-59. [PMID: 24218491 PMCID: PMC3875797 DOI: 10.1104/pp.113.224014] [Citation(s) in RCA: 81] [Impact Index Per Article: 7.4] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 06/25/2013] [Accepted: 11/10/2013] [Indexed: 05/18/2023]
Abstract
Arabidopsis (Arabidopsis thaliana) exhibits natural genetic variation in drought response, including varying levels of proline (Pro) accumulation under low water potential. As Pro accumulation is potentially important for stress tolerance and cellular redox control, we conducted a genome-wide association (GWAS) study of low water potential-induced Pro accumulation using a panel of natural accessions and publicly available single-nucleotide polymorphism (SNP) data sets. Candidate genomic regions were prioritized for subsequent study using metrics considering both the strength and spatial clustering of the association signal. These analyses found many candidate regions likely containing gene(s) influencing Pro accumulation. Reverse genetic analysis of several candidates identified new Pro effector genes, including thioredoxins and several genes encoding Universal Stress Protein A domain proteins. These new Pro effector genes further link Pro accumulation to cellular redox and energy status. Additional new Pro effector genes found include the mitochondrial protease LON1, ribosomal protein RPL24A, protein phosphatase 2A subunit A3, a MADS box protein, and a nucleoside triphosphate hydrolase. Several of these new Pro effector genes were from regions with multiple SNPs, each having moderate association with Pro accumulation. This pattern supports the use of summary approaches that incorporate clusters of SNP associations in addition to consideration of individual SNP probability values. Further GWAS-guided reverse genetics promises to find additional effectors of Pro accumulation. The combination of GWAS and reverse genetics to efficiently identify new effector genes may be especially applicable for traits difficult to analyze by other genetic screening methods.
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238
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Rípodas C, Castaingts M, Clúa J, Blanco F, Zanetti ME. Annotation, phylogeny and expression analysis of the nuclear factor Y gene families in common bean (Phaseolus vulgaris). FRONTIERS IN PLANT SCIENCE 2014; 5:761. [PMID: 25642232 PMCID: PMC4294137 DOI: 10.3389/fpls.2014.00761] [Citation(s) in RCA: 7] [Impact Index Per Article: 0.6] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Received: 09/29/2014] [Accepted: 12/10/2014] [Indexed: 05/08/2023]
Abstract
In the past decade, plant nuclear factor Y (NF-Y) genes have gained major interest due to their roles in many biological processes in plant development or adaptation to environmental conditions, particularly in the root nodule symbiosis established between legume plants and nitrogen fixing bacteria. NF-Ys are heterotrimeric transcriptional complexes composed of three subunits, NF-YA, NF-YB, and NF-YC, which bind with high affinity and specificity to the CCAAT box, a cis element present in many eukaryotic promoters. In plants, NF-Y subunits consist of gene families with about 10 members each. In this study, we have identified and characterized the NF-Y gene families of common bean (Phaseolus vulgaris), a grain legume of worldwide economical importance and the main source of dietary protein of developing countries. Expression analysis showed that some members of each family are up-regulated at early or late stages of the nitrogen fixing symbiotic interaction with its partner Rhizobium etli. We also showed that some genes are differentially accumulated in response to inoculation with high or less efficient R. etli strains, constituting excellent candidates to participate in the strain-specific response during symbiosis. Genes of the NF-YA family exhibit a highly structured intron-exon organization. Moreover, this family is characterized by the presence of upstream ORFs when introns in the 5' UTR are retained and miRNA target sites in their 3' UTR, suggesting that these genes might be subjected to a complex post-transcriptional regulation. Multiple protein alignments indicated the presence of highly conserved domains in each of the NF-Y families, presumably involved in subunit interactions and DNA binding. The analysis presented here constitutes a starting point to understand the regulation and biological function of individual members of the NF-Y families in different developmental processes in this grain legume.
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Affiliation(s)
| | | | | | | | - María Eugenia Zanetti
- *Correspondence: María Eugenia Zanetti, Instituto de Biotecnología y Biología Molecular, Universidad Nacional de La Plata, CCT-CONICET, Calle 115 y 47, C. P. 1900, La Plata, Argentina e-mail:
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239
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Siriwardana CL, Kumimoto RW, Jones DS, Holt BF. Gene Family Analysis of the Arabidopsis NF-YA Transcription Factors Reveals Opposing Abscisic Acid Responses During Seed Germination. PLANT MOLECULAR BIOLOGY REPORTER 2014; 32:971-986. [PMID: 25190903 PMCID: PMC4149875 DOI: 10.1007/s11105-014-0704-6] [Citation(s) in RCA: 30] [Impact Index Per Article: 2.7] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 05/19/2023]
Abstract
In the plant kingdom, each of the NUCLEAR FACTOR-Y (NF-Y) transcription factor families, NF-YA, NF-YB, and NF-YC, has undergone a great expansion compared to the animal kingdom. For example, Arabidopsis thaliana has 10 members of each gene family compared to only one in humans. Progress towards understanding the significance of this expansion is limited due to a lack of studies looking at the complete gene family during plant development. In the current study, transgenic overexpression lines were created for all 10 Arabidopsis NF-YA genes and examined for general development and alterations in abscisic acid (ABA)-mediated seed germination. NF-YA overexpression typically led to severe growth retardation and developmental defects, which extended from embryogenesis through to adult plants. Although overexpression of all NF-YA family members consistently led to growth retardation, some transgenic lines were hypersensitive to ABA during germination while others were hyposensitive. The opposing germination phenotypes were associated with the phylogenetic relationships between the NF-YA members. In addition, ABA marker genes were misregulated and ABA induction of gene expression was reduced in the overexpressors. Collectively, this study demonstrates that although NF-Ys have retained high degrees of similarity, they have evolved unique and sometimes opposing roles during plant development.
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Affiliation(s)
- Chamindika L. Siriwardana
- Department of Microbiology and Plant Biology, University of Oklahoma, 770 Van Vleet Oval, GLCH, Room 43, Norman, OK 73019 USA
| | - Roderick W. Kumimoto
- Department of Microbiology and Plant Biology, University of Oklahoma, 770 Van Vleet Oval, GLCH, Room 43, Norman, OK 73019 USA
| | - Daniel S. Jones
- Department of Microbiology and Plant Biology, University of Oklahoma, 770 Van Vleet Oval, GLCH, Room 43, Norman, OK 73019 USA
| | - Ben F. Holt
- Department of Microbiology and Plant Biology, University of Oklahoma, 770 Van Vleet Oval, GLCH, Room 43, Norman, OK 73019 USA
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240
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Fornari M, Calvenzani V, Masiero S, Tonelli C, Petroni K. The Arabidopsis NF-YA3 and NF-YA8 genes are functionally redundant and are required in early embryogenesis. PLoS One 2013; 8:e82043. [PMID: 24303077 PMCID: PMC3841131 DOI: 10.1371/journal.pone.0082043] [Citation(s) in RCA: 28] [Impact Index Per Article: 2.3] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 09/10/2012] [Accepted: 10/29/2013] [Indexed: 11/18/2022] Open
Abstract
Nuclear factor Y (NF-Y) is a trimeric transcription factor composed of three distinct subunits called NF-YA, NF-YB and NF-YC. In Arabidopsis thaliana, NF-Y subunits are known to play roles in many processes, such as gametogenesis, embryogenesis, seed development, drought resistance, ABA signaling, flowering time, primary root elongation, Endoplasmic Reticulum (ER) stress response and blue light responses. Here, we report that the closely related NF-YA3 and NF-YA8 genes control early embryogenesis. Detailed GUS and in situ analyses showed that NF-YA3 and NF-YA8 are expressed in vegetative and reproductive tissues with the highest expression being during embryo development from the globular to the torpedo embryo stage. Plants from the nf-ya3 and nf-ya8 single mutants do not display any obvious phenotypic alteration, whereas nf-ya3 nf-ya8 double mutants are embryo lethal. Morphological analyses showed that the nf-ya3 nf-ya8 embryos fail to undergo to the heart stage and develop into abnormal globular embryos with both proembryo and suspensor characterized by a disordered cell cluster with an irregular shape, suggesting defects in embryo development. The suppression of both NF-YA3 and NF-YA8 gene expression by RNAi experiments resulted in defective embryos that phenocopied the nf-ya3 nf-ya8 double mutants, whereas complementation experiments partially rescued the abnormal globular nf-ya3 nf-ya8 embryos, confirming that NF-YA3 and NF-YA8 are required in early embryogenesis. Finally, the lack of GFP expression of the auxin responsive DR5rev::GFP marker line in double mutant embryos suggested that mutations in both NF-YA3 and NF-YA8 affect auxin response in early developing embryos. Our findings indicate that NF-YA3 and NF-YA8 are functionally redundant genes required in early embryogenesis of Arabidopsis thaliana.
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Affiliation(s)
- Monica Fornari
- Dipartimento di Bioscienze, Università degli Studi di Milano, Milano, Italy
| | | | - Simona Masiero
- Dipartimento di Bioscienze, Università degli Studi di Milano, Milano, Italy
| | - Chiara Tonelli
- Dipartimento di Bioscienze, Università degli Studi di Milano, Milano, Italy
| | - Katia Petroni
- Dipartimento di Bioscienze, Università degli Studi di Milano, Milano, Italy
- * E-mail:
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241
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Sarcosine as a potential prostate cancer biomarker--a review. Int J Mol Sci 2013; 14:13893-908. [PMID: 23880848 PMCID: PMC3742224 DOI: 10.3390/ijms140713893] [Citation(s) in RCA: 77] [Impact Index Per Article: 6.4] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 05/22/2013] [Revised: 06/20/2013] [Accepted: 06/22/2013] [Indexed: 11/17/2022] Open
Abstract
Prostate cancer (CaP) is the most common type of tumour disease in men. Early diagnosis of cancer of the prostate is very important, because the sooner the cancer is detected, the better it is treated. According to that fact, there is great interest in the finding of new markers including amino acids, proteins or nucleic acids. Prostate specific antigen (PSA) is commonly used and is the most important biomarker of CaP. This marker can only be detected in blood and its sensitivity is approximately 80%. Moreover, early stages cannot be diagnosed using this protein. Currently, there does not exist a test for diagnosis of early stages of prostate cancer. This fact motivates us to find markers sensitive to the early stages of CaP, which are easily detected in body fluids including urine. A potential is therefore attributed to the non-protein amino acid sarcosine, which is generated by glycine-N-methyltransferase in its biochemical cycle. In this review, we summarize analytical methods for quantification of sarcosine as a CaP marker. Moreover, pathways of the connection of synthesis of sarcosine and CaP development are discussed.
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242
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Schaarschmidt S, Gresshoff PM, Hause B. Analyzing the soybean transcriptome during autoregulation of mycorrhization identifies the transcription factors GmNF-YA1a/b as positive regulators of arbuscular mycorrhization. Genome Biol 2013; 14:R62. [PMID: 23777981 PMCID: PMC3706930 DOI: 10.1186/gb-2013-14-6-r62] [Citation(s) in RCA: 34] [Impact Index Per Article: 2.8] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 02/26/2013] [Revised: 05/10/2013] [Accepted: 06/18/2013] [Indexed: 12/28/2022] Open
Abstract
BACKGROUND Similarly to the legume-rhizobia symbiosis, the arbuscular mycorrhiza interaction is controlled by autoregulation representing a feedback inhibition involving the CLAVATA1-like receptor kinase NARK in shoots. However, little is known about signals and targets down-stream of NARK. To find NARK-related transcriptional changes in mycorrhizal soybean (Glycine max) plants, we analyzed wild-type and two nark mutant lines interacting with the arbuscular mycorrhiza fungus Rhizophagus irregularis. RESULTS Affymetrix GeneChip analysis of non-inoculated and partially inoculated plants in a split-root system identified genes with potential regulation by arbuscular mycorrhiza or NARK. Most transcriptional changes occur locally during arbuscular mycorrhiza symbiosis and independently of NARK. RT-qPCR analysis verified nine genes as NARK-dependently regulated. Most of them have lower expression in roots or shoots of wild type compared to nark mutants, including genes encoding the receptor kinase GmSIK1, proteins with putative function as ornithine acetyl transferase, and a DEAD box RNA helicase. A predicted annexin named GmAnnx1a is differentially regulated by NARK and arbuscular mycorrhiza in distinct plant organs. Two putative CCAAT-binding transcription factor genes named GmNF-YA1a and GmNF-YA1b are down-regulated NARK-dependently in non-infected roots of mycorrhizal wild-type plants and functional gene analysis confirmed a positive role for these genes in the development of an arbuscular mycorrhiza symbiosis. CONCLUSIONS Our results indicate GmNF-YA1a/b as positive regulators in arbuscular mycorrhiza establishment, whose expression is down-regulated by NARK in the autoregulated root tissue thereby diminishing subsequent infections. Genes regulated independently of arbuscular mycorrhization by NARK support an additional function of NARK in symbioses-independent mechanisms.
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Affiliation(s)
- Sara Schaarschmidt
- Leibniz Institute of Plant Biochemistry (IPB), Weinberg 3, 06120 Halle (Saale), Germany
- Humboldt-Universität zu Berlin, Faculty of Agriculture and Horticulture, Division Urban Plant Ecophysiology, Lentzeallee 55-57, 14195 Berlin, Germany
| | - Peter M Gresshoff
- ARC Centre of Excellence for Integrative Legume Research (CILR), The University of Queensland, St. Lucia, Queensland 4072, Australia
| | - Bettina Hause
- Leibniz Institute of Plant Biochemistry (IPB), Weinberg 3, 06120 Halle (Saale), Germany
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243
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Gnesutta N, Nardini M, Mantovani R. The H2A/H2B-like histone-fold domain proteins at the crossroad between chromatin and different DNA metabolisms. Transcription 2013; 4:114-9. [PMID: 23756340 DOI: 10.4161/trns.25002] [Citation(s) in RCA: 20] [Impact Index Per Article: 1.7] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/14/2022] Open
Abstract
Core histones are the building block of chromatin and among the most highly conserved proteins in eukaryotes. The related "deviant" histones share the histone-fold domain, and serve various roles in DNA metabolism. We provide here a structural and functional outlook of H2A/H2B-like deviant histones in transcription, replication and remodeling.
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Affiliation(s)
- Nerina Gnesutta
- Dipartimento di Bioscienze; Università degli Studi di Milano; Milano, Italy
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244
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Li YJ, Fang Y, Fu YR, Huang JG, Wu CA, Zheng CC. NFYA1 is involved in regulation of postgermination growth arrest under salt stress in Arabidopsis. PLoS One 2013; 8:e61289. [PMID: 23637805 PMCID: PMC3634844 DOI: 10.1371/journal.pone.0061289] [Citation(s) in RCA: 59] [Impact Index Per Article: 4.9] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 12/23/2012] [Accepted: 03/07/2013] [Indexed: 11/23/2022] Open
Abstract
The nuclear factor Y (NF-Y), which is a ubiquitous transcription factor found in eukaryotes, is composed of three distinct subunits, namely, NF-YA, NF-YB, and NF-YC. Here, we firstly characterized the detailed function of the Arabidopsis NFYA1 factor. It is found that the 35S::AtNFYA1-overexpressed lines were hypersensitive to salt stress and Abscisic acid (ABA) during the early-postgermination growth stages. The transgenic lines exhibited a severe postgermination growth arrest compared with the wild-type (WT) under salt stress and ABA treatment. Interestingly, sodium tungstate, which is an ABA synthesis inhibitor, restored the salt-sensitive phenotype of the 35S::AtNFYA1 lines. Results of the qRT-PCR analysis showed that the mRNA levels of ABI3 and ABI5, as well as their downstream genes AtEM1 and AtEM6, were more greatly upregulated under salt stress during seed germination in the transgenic lines compared with those in WT. On the other hand, the NFYA1-RNAi lines were found to be insensitive to salt stress and exhibited decreased levels of ABI3, ABI5, EM1, and EM6 transcripts. Our results provide clear evidence supporting a role of AtNFYA1 in regulating postgermination growth arrest under salt stress.
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Affiliation(s)
- Yan-Jie Li
- State Key Laboratory of Crop Biology, Shandong Agricultural University, Taian, Shandong, People’s Republic of China
| | - Yi Fang
- State Key Laboratory of Crop Biology, Shandong Agricultural University, Taian, Shandong, People’s Republic of China
| | - Ya-Ru Fu
- State Key Laboratory of Crop Biology, Shandong Agricultural University, Taian, Shandong, People’s Republic of China
| | - Jin-Guang Huang
- State Key Laboratory of Crop Biology, Shandong Agricultural University, Taian, Shandong, People’s Republic of China
| | - Chang-Ai Wu
- State Key Laboratory of Crop Biology, Shandong Agricultural University, Taian, Shandong, People’s Republic of China
- * E-mail: (CZ); (CW)
| | - Cheng-Chao Zheng
- State Key Laboratory of Crop Biology, Shandong Agricultural University, Taian, Shandong, People’s Republic of China
- * E-mail: (CZ); (CW)
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245
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Hong SY, Roze LV, Linz JE. Oxidative stress-related transcription factors in the regulation of secondary metabolism. Toxins (Basel) 2013; 5:683-702. [PMID: 23598564 PMCID: PMC3705287 DOI: 10.3390/toxins5040683] [Citation(s) in RCA: 119] [Impact Index Per Article: 9.9] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 03/05/2013] [Revised: 04/01/2013] [Accepted: 04/09/2013] [Indexed: 11/24/2022] Open
Abstract
There is extensive and unequivocal evidence that secondary metabolism in filamentous fungi and plants is associated with oxidative stress. In support of this idea, transcription factors related to oxidative stress response in yeast, plants, and fungi have been shown to participate in controlling secondary metabolism. Aflatoxin biosynthesis, one model of secondary metabolism, has been demonstrated to be triggered and intensified by reactive oxygen species buildup. An oxidative stress-related bZIP transcription factor AtfB is a key player in coordinate expression of antioxidant genes and genes involved in aflatoxin biosynthesis. Recent findings from our laboratory provide strong support for a regulatory network comprised of at least four transcription factors that bind in a highly coordinated and timely manner to promoters of the target genes and regulate their expression. In this review, we will focus on transcription factors involved in co-regulation of aflatoxin biosynthesis with oxidative stress response in aspergilli, and we will discuss the relationship of known oxidative stress-associated transcription factors and secondary metabolism in other organisms. We will also talk about transcription factors that are involved in oxidative stress response, but have not yet been demonstrated to be affiliated with secondary metabolism. The data support the notion that secondary metabolism provides a secondary line of defense in cellular response to oxidative stress.
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Affiliation(s)
- Sung-Yong Hong
- Department of Food Science and Human Nutrition, Michigan State University, East Lansing, MI 48824, USA; E-Mails: (S.-Y.H.); (L.V.R.)
| | - Ludmila V. Roze
- Department of Food Science and Human Nutrition, Michigan State University, East Lansing, MI 48824, USA; E-Mails: (S.-Y.H.); (L.V.R.)
| | - John E. Linz
- Department of Food Science and Human Nutrition, Michigan State University, East Lansing, MI 48824, USA; E-Mails: (S.-Y.H.); (L.V.R.)
- Department of Microbiology and Molecular Genetics, Michigan State University, East Lansing, MI 48824, USA
- National Food Safety and Toxicology Center, Michigan State University, East Lansing, MI 48824, USA
- Center for Integrative Toxicology, Michigan State University, East Lansing, MI 48824, USA
- Author to whom correspondence should be addressed; E-Mail: ; Tel.: +1-517-355-8474; Fax: +1-517-353-8963
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Kumimoto RW, Siriwardana CL, Gayler KK, Risinger JR, Siefers N, Holt BF. NUCLEAR FACTOR Y transcription factors have both opposing and additive roles in ABA-mediated seed germination. PLoS One 2013; 8:e59481. [PMID: 23527203 PMCID: PMC3602376 DOI: 10.1371/journal.pone.0059481] [Citation(s) in RCA: 36] [Impact Index Per Article: 3.0] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 09/20/2012] [Accepted: 02/14/2013] [Indexed: 11/18/2022] Open
Abstract
In the model organism Arabidopsis thaliana the heterotrimeric transcription factor NUCLEAR FACTOR Y (NF-Y) has been shown to play multiple roles in facilitating plant growth and development. Although NF-Y itself represents a multi-protein transcriptional complex, recent studies have shown important interactions with other transcription factors, especially those in the bZIP family. Here we add to the growing evidence that NF-Y and bZIP form common complexes to affect many processes. We carried out transcriptional profiling on nf-yc mutants and through subsequent analyses found an enrichment of bZIP binding sites in the promoter elements of misregulated genes. Using NF-Y as bait, yeast two hybrid assays yielded interactions with bZIP proteins that are known to control ABA signaling. Accordingly, we find that plants mutant for several NF-Y subunits show characteristic phenotypes associated with the disruption of ABA signaling. While previous reports have shown additive roles for NF-YC family members in photoperiodic flowering, we found that they can have opposing roles in ABA signaling. Collectively, these results demonstrated the importance and complexity of NF-Y in the integration of environmental and hormone signals.
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Affiliation(s)
- Roderick W. Kumimoto
- Department of Microbiology and Plant Biology, University of Oklahoma, Norman, Oklahoma, United States of America
| | - Chamindika L. Siriwardana
- Department of Microbiology and Plant Biology, University of Oklahoma, Norman, Oklahoma, United States of America
| | - Krystal K. Gayler
- Department of Microbiology and Plant Biology, University of Oklahoma, Norman, Oklahoma, United States of America
| | - Jan R. Risinger
- Department of Microbiology and Plant Biology, University of Oklahoma, Norman, Oklahoma, United States of America
| | - Nicholas Siefers
- Department of Microbiology and Plant Biology, University of Oklahoma, Norman, Oklahoma, United States of America
| | - Ben F. Holt
- Department of Microbiology and Plant Biology, University of Oklahoma, Norman, Oklahoma, United States of America
- * E-mail:
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