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Alharbi B, Hunt JD, Dimitrova S, Spadafora ND, Cort AP, Colombo D, Müller CT, Ghuge SA, Davoli D, Cona A, Mariotti L, Picciarelli P, de Graaf B, Rogers HJ. Mutation of Arabidopsis Copper-Containing Amine Oxidase Gene AtCuAOδ Alters Polyamines, Reduces Gibberellin Content and Affects Development. Int J Mol Sci 2020; 21:E7789. [PMID: 33096855 PMCID: PMC7589035 DOI: 10.3390/ijms21207789] [Citation(s) in RCA: 6] [Impact Index Per Article: 1.2] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 09/28/2020] [Revised: 10/15/2020] [Accepted: 10/16/2020] [Indexed: 01/20/2023] Open
Abstract
Polyamines (PAs) are essential metabolites in plants performing multiple functions during growth and development. Copper-containing amine oxidases (CuAOs) catalyse the catabolism of PAs and in Arabidopsis thaliana are encoded by a gene family. Two mutants of one gene family member, AtCuAOδ, showed delayed seed germination, leaf emergence, and flowering time. The height of the primary inflorescence shoot was reduced, and developmental leaf senescence was delayed. Siliques were significantly longer in mutant lines and contained more seeds. The phenotype of AtCuAOδ over-expressors was less affected. Before flowering, there was a significant increase in putrescine in AtCuAOδ mutant leaves compared to wild type (WT), while after flowering both spermidine and spermine concentrations were significantly higher than in WT leaves. The expression of GA (gibberellic acid) biosynthetic genes was repressed and the content of GA1, GA7, GA8, GA9, and GA20 was reduced in the mutants. The inhibitor of copper-containing amine oxidases, aminoguanidine hydrochloride, mimicked the effect of AtCuAOδ mutation on WT seed germination. Delayed germination, reduced shoot height, and delayed flowering in the mutants were rescued by GA3 treatment. These data strongly suggest AtCuAOδ is an important gene regulating PA homeostasis, and that a perturbation of PAs affects plant development through a reduction in GA biosynthesis.
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Affiliation(s)
- Basmah Alharbi
- School of Biosciences, Cardiff University, Sir Martin Evans Building, Museum Avenue, Cardiff CF10 3AX, UK; (B.A.); (J.D.H.); (S.D.); (N.D.S.); (A.P.C.); (D.C.); (C.T.M.); (D.D.); (B.d.G.)
| | - Julie D. Hunt
- School of Biosciences, Cardiff University, Sir Martin Evans Building, Museum Avenue, Cardiff CF10 3AX, UK; (B.A.); (J.D.H.); (S.D.); (N.D.S.); (A.P.C.); (D.C.); (C.T.M.); (D.D.); (B.d.G.)
| | - Simone Dimitrova
- School of Biosciences, Cardiff University, Sir Martin Evans Building, Museum Avenue, Cardiff CF10 3AX, UK; (B.A.); (J.D.H.); (S.D.); (N.D.S.); (A.P.C.); (D.C.); (C.T.M.); (D.D.); (B.d.G.)
| | - Natasha D. Spadafora
- School of Biosciences, Cardiff University, Sir Martin Evans Building, Museum Avenue, Cardiff CF10 3AX, UK; (B.A.); (J.D.H.); (S.D.); (N.D.S.); (A.P.C.); (D.C.); (C.T.M.); (D.D.); (B.d.G.)
| | - Alex P. Cort
- School of Biosciences, Cardiff University, Sir Martin Evans Building, Museum Avenue, Cardiff CF10 3AX, UK; (B.A.); (J.D.H.); (S.D.); (N.D.S.); (A.P.C.); (D.C.); (C.T.M.); (D.D.); (B.d.G.)
| | - Davide Colombo
- School of Biosciences, Cardiff University, Sir Martin Evans Building, Museum Avenue, Cardiff CF10 3AX, UK; (B.A.); (J.D.H.); (S.D.); (N.D.S.); (A.P.C.); (D.C.); (C.T.M.); (D.D.); (B.d.G.)
| | - Carsten T. Müller
- School of Biosciences, Cardiff University, Sir Martin Evans Building, Museum Avenue, Cardiff CF10 3AX, UK; (B.A.); (J.D.H.); (S.D.); (N.D.S.); (A.P.C.); (D.C.); (C.T.M.); (D.D.); (B.d.G.)
| | - Sandip A. Ghuge
- Department of Sciences, Università Roma Tre, Viale Marconi, 446, 00146 Roma, Italy; (S.A.G.); (A.C.)
| | - Daniela Davoli
- School of Biosciences, Cardiff University, Sir Martin Evans Building, Museum Avenue, Cardiff CF10 3AX, UK; (B.A.); (J.D.H.); (S.D.); (N.D.S.); (A.P.C.); (D.C.); (C.T.M.); (D.D.); (B.d.G.)
| | - Alessandra Cona
- Department of Sciences, Università Roma Tre, Viale Marconi, 446, 00146 Roma, Italy; (S.A.G.); (A.C.)
| | - Lorenzo Mariotti
- Department of Agriculture, Food and Environment, University of Pisa, Via Mariscoglio 34, 56124 Pisa, Italy; (L.M.); (P.P.)
| | - Piero Picciarelli
- Department of Agriculture, Food and Environment, University of Pisa, Via Mariscoglio 34, 56124 Pisa, Italy; (L.M.); (P.P.)
| | - Barend de Graaf
- School of Biosciences, Cardiff University, Sir Martin Evans Building, Museum Avenue, Cardiff CF10 3AX, UK; (B.A.); (J.D.H.); (S.D.); (N.D.S.); (A.P.C.); (D.C.); (C.T.M.); (D.D.); (B.d.G.)
| | - Hilary J. Rogers
- School of Biosciences, Cardiff University, Sir Martin Evans Building, Museum Avenue, Cardiff CF10 3AX, UK; (B.A.); (J.D.H.); (S.D.); (N.D.S.); (A.P.C.); (D.C.); (C.T.M.); (D.D.); (B.d.G.)
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Abstract
The polyamines putrescine, spermidine and spermine have been implicated in a myriad of biological functions in many organisms. Research done during the last decades has accumulated a large body of evidence demonstrating that polyamines are key modulators of plant growth and development. Different experimental approaches have been employed including the measurement of endogenous polyamine levels and the activities of polyamine metabolic enzymes, the study of the effects resulting from exogenous polyamine applications and chemical or genetic manipulation of endogenous polyamine titers. This chapter reviews the role of PAs in seed germination, root development, plant architecture, in vitro plant regeneration, flowering and plant senescence. Evidence presented here indicates that polyamines should be regarded as plant growth regulators with potential applications in agriculture and plant biotechnology.
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Tassoni A, Franceschetti M, Bagni N. Polyamines and salt stress response and tolerance in Arabidopsis thaliana flowers. PLANT PHYSIOLOGY AND BIOCHEMISTRY : PPB 2008; 46:607-13. [PMID: 18434176 DOI: 10.1016/j.plaphy.2008.02.005] [Citation(s) in RCA: 15] [Impact Index Per Article: 0.9] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 10/15/2007] [Indexed: 05/18/2023]
Abstract
In the present study we analysed polyamine metabolism in Arabidopsis thaliana (ecotype Columbia) flowers and stalks collected from plants germinated and grown under increasing salt-stress conditions (0-75 mM NaCl). The expression level of the different isoforms of polyamine biosynthetic enzymes was analysed by reverse transcriptase-polymerase chain reaction (RT-PCR). Spermidine synthase enzyme activity determined both in supernatant and pellet fractions, together with RT-PCR results, led us to hypothesize a different intracellular compartmentation of the isoforms of these enzymes. Free and conjugated polyamines (perchloric acid-soluble and -insoluble) were measured. Free spermidine was the most abundant polyamine and its levels, such as those of free spermine, increased with salt concentration, supporting the hypothesis for a specific role of those polyamines in the response and tolerance to salt stress of Arabidopsis thaliana flowers.
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Affiliation(s)
- Annalisa Tassoni
- Department of Biology and Interdepartmental Centre for Biotechnology, University of Bologna, Via Irnerio 42, 40126 Bologna, Italy
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Imai A, Matsuyama T, Hanzawa Y, Akiyama T, Tamaoki M, Saji H, Shirano Y, Kato T, Hayashi H, Shibata D, Tabata S, Komeda Y, Takahashi T. Spermidine synthase genes are essential for survival of Arabidopsis. PLANT PHYSIOLOGY 2004; 135:1565-73. [PMID: 15247389 PMCID: PMC519071 DOI: 10.1104/pp.104.041699] [Citation(s) in RCA: 155] [Impact Index Per Article: 7.4] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 02/26/2004] [Revised: 04/26/2004] [Accepted: 04/27/2004] [Indexed: 05/18/2023]
Abstract
The cellular polyamines putrescine, spermidine, and spermine are ubiquitous in nature and have been implicated in a wide range of growth and developmental processes. There is little information, however, on mutant plants or animals defective in the synthesis of polyamines. The Arabidopsis genome has two genes encoding spermidine synthase, SPDS1 and SPDS2. In this paper, we describe T-DNA insertion mutants of both of these genes. While each mutant allele shows normal growth, spds1-1 spds2-1 double-mutant seeds are abnormally shrunken and they have embryos that are arrested morphologically at the heart-torpedo transition stage. These seeds contain significantly reduced levels of spermidine and high levels of its precursor, putrescine. The embryo lethal phenotype of spds1-1 spds2-1 is complemented by the wild-type SPDS1 gene. In addition, we observed a nearly identical seed phenotype among an F2 seed population from the cross between the spds2-1 allele and SPDS1 RNA interference transgenic lines. These data provide the first genetic evidence indicating a critical role of the spermidine synthase in plant embryo development.
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Affiliation(s)
- Akihiro Imai
- Division of Biological Sciences, Graduate School of Science, Hokkaido University, Sapporo 060-0810, Japan
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