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Vanoosthuyse V, Legros P, van der Sar SJA, Yvert G, Toda K, Le Bihan T, Watanabe Y, Hardwick K, Bernard P. CPF-associated phosphatase activity opposes condensin-mediated chromosome condensation. PLoS Genet 2014; 10:e1004415. [PMID: 24945319 PMCID: PMC4063703 DOI: 10.1371/journal.pgen.1004415] [Citation(s) in RCA: 41] [Impact Index Per Article: 3.7] [Reference Citation Analysis] [Abstract] [MESH Headings] [Grants] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 12/18/2013] [Accepted: 04/16/2014] [Indexed: 12/03/2022] Open
Abstract
Functional links connecting gene transcription and condensin-mediated chromosome condensation have been established in species ranging from prokaryotes to vertebrates. However, the exact nature of these links remains misunderstood. Here we show in fission yeast that the 3′ end RNA processing factor Swd2.2, a component of the Cleavage and Polyadenylation Factor (CPF), is a negative regulator of condensin-mediated chromosome condensation. Lack of Swd2.2 does not affect the assembly of the CPF but reduces its association with chromatin. This causes only limited, context-dependent effects on gene expression and transcription termination. However, CPF-associated Swd2.2 is required for the association of Protein Phosphatase 1 PP1Dis2 with chromatin, through an interaction with Ppn1, a protein that we identify as the fission yeast homologue of vertebrate PNUTS. We demonstrate that Swd2.2, Ppn1 and PP1Dis2 form an independent module within the CPF, which provides an essential function in the absence of the CPF-associated Ssu72 phosphatase. We show that Ppn1 and Ssu72, like Swd2.2, are also negative regulators of condensin-mediated chromosome condensation. We conclude that Swd2.2 opposes condensin-mediated chromosome condensation by facilitating the function of the two CPF-associated phosphatases PP1 and Ssu72. Failure to properly condense chromosomes prior to their segregation in mitosis can lead to genome instability. The evolutionary-conserved condensin complex is key to the condensation process but the molecular mechanisms underlying its localization pattern on chromosomes remain unclear. Previous observations showed that the localization of condensin is intimately linked to regions of high transcription, although, somewhat paradoxically, its association with chromatin is disrupted by a processive polymerase activity. Here we identify several RNA processing factors as negative regulators of condensin in fission yeast. Two of these factors associate with PP1 phosphatase as an independent entity within the Cleavage and Polyadenylation Factor (CPF), a complex key for 3′ end RNA processing. Lack of this module induces only minor and context-dependent effects on gene expression. Our data suggest that this module helps maintaining the proper level of phosphatase activity within the CPF and thereby opposes the function of condensin in mitotic chromosome condensation.
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Affiliation(s)
- Vincent Vanoosthuyse
- CNRS, UMR5239, LBMC; Ecole Normale Supérieure de Lyon; Université Lyon 01, Lyon, France
- Wellcome Trust Centre for Cell Biology, University of Edinburgh, Edinburgh, United Kingdom
- * E-mail:
| | - Pénélope Legros
- CNRS, UMR5239, LBMC; Ecole Normale Supérieure de Lyon; Université Lyon 01, Lyon, France
| | | | - Gaël Yvert
- CNRS, UMR5239, LBMC; Ecole Normale Supérieure de Lyon; Université Lyon 01, Lyon, France
| | - Kenji Toda
- Chromosome Dynamics, Institute of Molecular and Cellular Biosciences, The University of Tokyo, Yayoi, Bunkyo-ku, Tokyo, Japan
| | - Thierry Le Bihan
- SynthSys Edinburgh, The University of Edinburgh, Edinburgh, United Kingdom
| | - Yoshinori Watanabe
- Chromosome Dynamics, Institute of Molecular and Cellular Biosciences, The University of Tokyo, Yayoi, Bunkyo-ku, Tokyo, Japan
| | - Kevin Hardwick
- Wellcome Trust Centre for Cell Biology, University of Edinburgh, Edinburgh, United Kingdom
| | - Pascal Bernard
- CNRS, UMR5239, LBMC; Ecole Normale Supérieure de Lyon; Université Lyon 01, Lyon, France
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52
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Gadaleta MC, Iwasaki O, Noguchi C, Noma KI, Noguchi E. New vectors for epitope tagging and gene disruption in Schizosaccharomyces pombe. Biotechniques 2014; 55:257-63. [PMID: 24215641 DOI: 10.2144/000114100] [Citation(s) in RCA: 14] [Impact Index Per Article: 1.3] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 06/11/2013] [Accepted: 10/16/2013] [Indexed: 12/31/2022] Open
Abstract
We describe a series of new vectors for PCR-based epitope tagging and gene disruption in the fission yeast Schizosaccharomyces pombe, an exceptional model organism for the study of cellular processes. The vectors are designed for amplification of gene-targeting DNA cassettes and integration into specific genetic loci, allowing expression of proteins fused to 12 tandem copies of the Pk (V5) epitope or 5 tandem copies of the FLAG epitope with a glycine linker. These vectors are available with various antibiotic or nutritional markers and are useful for protein studies using biochemical and cell biological methods. We also describe new vectors for fluorescent protein-tagging and gene disruption using ura4MX6, LEU2MX6, and his3MX6 selection markers, allowing researchers in the S. pombe community to disrupt genes and manipulate genomic loci using primer sets already available for the widely used pFA6a-MX6 system. Our new vectors may also be useful for gene manipulation in Saccharomyces cerevisiae.
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Affiliation(s)
- Mariana C Gadaleta
- Department of Biochemistry and Molecular Biology, Drexel University College of Medicine, Philadelphia, PA
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53
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Kocic G, Cukuranovic J, Stoimenov TJ, Cukuranovic R, Djordjevic V, Bogdanovic D, Stefanovic V. Global and specific histone acetylation pattern in patients with Balkan endemic nephropathy, a worldwide disease. Ren Fail 2014; 36:1078-82. [PMID: 24845033 DOI: 10.3109/0886022x.2014.917562] [Citation(s) in RCA: 10] [Impact Index Per Article: 0.9] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/15/2022] Open
Abstract
UNLABELLED Abstract Background: Balkan endemic nephropathy (BEN) is a chronic tubulointerstitial nephropathy present in the Danube river regions in several Balkan countries. There appears to be a polygenic susceptibility to the disease in interaction with multiple environmental factors (aristolochic acid, ochratoxin A). In a previous study SEC61G, IL17RA, HDAC11 proved to be differently methylated throughout all patient-control pairs of BEN patients from Serbia and Bulgaria. Emerging connections between DNA methylation and histone acetylation prompted the present study on histone acetylation in patients with BEN. METHODS The study involved 39 patients with BEN, and 39 controls collected from non-endemic regions in Serbia. The EpiSeeker Histone H3 and H4 Total Acetylation Detection colorimetric Kits and specific acetylated at lysine 18 H3K18 and H3K36 acetylated at lysine 36 detection kits were used. RESULTS It was documented that total H4 histone acetylation level was increased significantly, while total H3 histone acetylation did not differ significantly. Specific histone structure and functional properties may be affected by the observed derangement of H3 histone acetylation pattern, since H3K36 site was significantly more acetylated, while H3K18 tended to be less acetylated than in control subjects. Multiple regression analysis revealed a statistically significant relationship between H4, H3T and H3K36 in BEN patients. CONCLUSION This preliminary study suggests that the acetylation of histone lysine residues was detectable and found increased at specific sites of H3 and total H4 histones isolated from urothelial cells of patients with BEN. Having in mind a possible mechanism and biological role of epigenetic chromatin modification in urothelial tumor development they obtained results may open opportunity for selective therapeutic interventions in patients with BEN.
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Affiliation(s)
- Gordana Kocic
- Faculty of Medicine, Institute of Biochemistry, University of Nis , Nis , Serbia
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54
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Doenecke D. Chromatin dynamics from S-phase to mitosis: contributions of histone modifications. Cell Tissue Res 2014; 356:467-75. [PMID: 24816984 DOI: 10.1007/s00441-014-1873-1] [Citation(s) in RCA: 7] [Impact Index Per Article: 0.6] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 02/10/2014] [Accepted: 03/13/2014] [Indexed: 10/25/2022]
Abstract
This review focuses on the major protein moiety of chromosomes, i.e., the histone proteins, on the contribution of their posttranslational modification to structural and functional chromatin dynamics, on the acetylation and methylation of lysine residues, and on the phosphorylation of serine or threonine with respect to various steps during the cell cycle.
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Affiliation(s)
- Detlef Doenecke
- Department for Molecular Biology, Georg August University, Göttingen, Germany,
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55
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Getting down to the core of histone modifications. Chromosoma 2014; 123:355-71. [PMID: 24789118 DOI: 10.1007/s00412-014-0465-x] [Citation(s) in RCA: 9] [Impact Index Per Article: 0.8] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 01/17/2014] [Revised: 04/08/2014] [Accepted: 04/09/2014] [Indexed: 10/25/2022]
Abstract
The identification of an increasing number of posttranslationally modified residues within histone core domains is furthering our understanding of how nucleosome dynamics are regulated. In this review, we first discuss how the targeting of specific histone H3 core residues can directly influence the nucleosome structure and then apply this knowledge to provide functional reasoning for their localization to distinct genomic regions. While we focus mainly on transcriptional implications, the principles discussed in this review can also be applied to their roles in other cellular processes. Finally, we highlight some examples of how aberrant modifications of core histone residues can facilitate the pathogenesis of some diseases.
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56
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Conti AD, Kobets T, Escudero-Lourdes C, Montgomery B, Tryndyak V, Beland FA, Doerge DR, Pogribny IP. Dose- and time-dependent epigenetic changes in the livers of Fisher 344 rats exposed to furan. Toxicol Sci 2014; 139:371-80. [PMID: 24614236 DOI: 10.1093/toxsci/kfu044] [Citation(s) in RCA: 35] [Impact Index Per Article: 3.2] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/28/2023] Open
Abstract
The presence of furan in common cooked foods along with evidence from experimental studies that lifetime exposure to furan causes liver tumors in rats and mice has caused concern to regulatory public health agencies worldwide; however, the mechanisms of the furan-induced hepatocarcinogenicity remain unclear. The goal of the present study was to investigate whether or not long-term exposure to furan causes epigenetic alterations in rat liver. Treating of male Fisher 344 rats by gavage 5 days per week with 0, 0.92, 2.0, or 4.4 mg furan/kg body weight (bw)/day resulted in dose- and time-dependent epigenetic changes consisting of alterations in DNA methylation and histone lysine methylation and acetylation, altered expression of chromatin modifying genes, and gene-specific methylation. Specifically, exposure to furan at doses 0.92, 2.0, or 4.4 mg furan/kg bw/day caused global DNA demethylation after 360 days of treatment. There was also a sustained decrease in the levels of histone H3 lysine 9 and H4 lysine 20 trimethylation after 180 and 360 days of furan exposure, and a marked reduction of histone H3 lysine 9 and H3 lysine 56 acetylation after 360 days at 4.4 mg/kg bw/day. These histone modification changes were accompanied by a reduced expression of Suv39h1, Prdm2, and Suv4-20h2 histone methyltransferases and Ep300 and Kat2a histone acetyltransferases. Additionally, furan at 2.0 and 4.4 mg/kg bw/day induced hypermethylation-dependent down-regulation of the Rassf1a gene in the livers after 180 and 360 days. These findings indicate possible involvement of dose- and time-dependent epigenetic modifications in the furan hepatotoxicity and carcinogenicity.
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Affiliation(s)
- Aline de Conti
- Division of Biochemical Toxicology, National Center for Toxicological Research, Jefferson, Arkansas, 72079 USA
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57
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Kim HS, Mukhopadhyay R, Rothbart SB, Silva AC, Vanoosthuyse V, Radovani E, Kislinger T, Roguev A, Ryan CJ, Xu J, Jahari H, Hardwick KG, Greenblatt JF, Krogan NJ, Fillingham JS, Strahl BD, Bouhassira EE, Edelmann W, Keogh MC. Identification of a BET family bromodomain/casein kinase II/TAF-containing complex as a regulator of mitotic condensin function. Cell Rep 2014; 6:892-905. [PMID: 24565511 DOI: 10.1016/j.celrep.2014.01.029] [Citation(s) in RCA: 11] [Impact Index Per Article: 1.0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 03/25/2013] [Revised: 10/20/2013] [Accepted: 01/23/2014] [Indexed: 11/26/2022] Open
Abstract
Condensin is a central regulator of mitotic genome structure with mutants showing poorly condensed chromosomes and profound segregation defects. Here, we identify NCT, a complex comprising the Nrc1 BET-family tandem bromodomain protein (SPAC631.02), casein kinase II (CKII), and several TAFs, as a regulator of condensin function. We show that NCT and condensin bind similar genomic regions but only briefly colocalize during the periods of chromosome condensation and decondensation. This pattern of NCT binding at the core centromere, the region of maximal condensin enrichment, tracks the abundance of acetylated histone H4, as regulated by the Hat1-Mis16 acetyltransferase complex and recognized by the first Nrc1 bromodomain. Strikingly, mutants in NCT or Hat1-Mis16 restore the formation of segregation-competent chromosomes in cells containing defective condensin. These results are consistent with a model where NCT targets CKII to chromatin in a cell-cycle-directed manner in order to modulate the activity of condensin during chromosome condensation and decondensation.
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Affiliation(s)
- Hyun-Soo Kim
- Department of Cell Biology, Albert Einstein College of Medicine, New York, NY 10454, USA
| | - Rituparna Mukhopadhyay
- Department of Cell Biology, Albert Einstein College of Medicine, New York, NY 10454, USA
| | - Scott B Rothbart
- Department of Biochemistry and Biophysics, UNC School of Medicine, Chapel Hill, NC 27599, USA
| | - Andrea C Silva
- Department of Cell Biology, Albert Einstein College of Medicine, New York, NY 10454, USA
| | - Vincent Vanoosthuyse
- Wellcome Trust Centre for Cell Biology, University of Edinburgh, Edinburgh EH9 3QR, Scotland
| | - Ernest Radovani
- Department of Chemistry and Biology, Ryerson University, Toronto, ON M5B 2K3, Canada
| | | | - Assen Roguev
- Department of Cellular and Molecular Pharmacology, UCSF, San Francisco, CA 94158, USA; California Institute for Quantitative Biosciences, San Francisco, CA 94158, USA
| | - Colm J Ryan
- Department of Cellular and Molecular Pharmacology, UCSF, San Francisco, CA 94158, USA; California Institute for Quantitative Biosciences, San Francisco, CA 94158, USA; School of Medicine & Medical Science, University College, Dublin 4, Ireland
| | - Jiewei Xu
- Department of Cellular and Molecular Pharmacology, UCSF, San Francisco, CA 94158, USA; California Institute for Quantitative Biosciences, San Francisco, CA 94158, USA
| | - Harlizawati Jahari
- Department of Cellular and Molecular Pharmacology, UCSF, San Francisco, CA 94158, USA; California Institute for Quantitative Biosciences, San Francisco, CA 94158, USA; Malaysian Institute of Pharmaceuticals and Nutraceuticals, 11800 USM Penang, Malaysia
| | - Kevin G Hardwick
- Wellcome Trust Centre for Cell Biology, University of Edinburgh, Edinburgh EH9 3QR, Scotland
| | - Jack F Greenblatt
- Terrence Donnelly Centre for Cellular and Biomolecular Research, University of Toronto, Toronto, ON M5S 3E1, Canada
| | - Nevan J Krogan
- Department of Cellular and Molecular Pharmacology, UCSF, San Francisco, CA 94158, USA; California Institute for Quantitative Biosciences, San Francisco, CA 94158, USA; J. David Gladstone Institutes, San Francisco, CA 94158, USA
| | - Jeffrey S Fillingham
- Department of Chemistry and Biology, Ryerson University, Toronto, ON M5B 2K3, Canada
| | - Brian D Strahl
- Department of Biochemistry and Biophysics, UNC School of Medicine, Chapel Hill, NC 27599, USA
| | - Eric E Bouhassira
- Department of Cell Biology, Albert Einstein College of Medicine, New York, NY 10454, USA
| | - Winfried Edelmann
- Department of Cell Biology, Albert Einstein College of Medicine, New York, NY 10454, USA
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58
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Abstract
Mitotic chromosome condensation is a prerequisite for the accurate segregation of chromosomes during cell division, and the conserved condensin complex a central player of this process. However, how condensin binds chromatin and shapes mitotic chromosomes remain poorly understood. Recent genome-wide binding studies showing that in most species condensin is enriched near highly expressed genes suggest a conserved link between condensin occupancy and high transcription rates. To gain insight into the mechanisms of condensin binding and mitotic chromosome condensation, we searched for factors that collaborate with condensin through a synthetic lethal genetic screen in the fission yeast Schizosaccharomyces pombe. We isolated novel mutations affecting condensin, as well as mutations in four genes not previously implicated in mitotic chromosome condensation in fission yeast. These mutations cause chromosome segregation defects similar to those provoked by defects in condensation. We also identified a suppressor of the cut3-477 condensin mutation, which largely rescued chromosome segregation during anaphase. Remarkably, of the five genes identified in this study, four encode transcription co-factors. Our results therefore provide strong additional evidence for a functional connection between chromosome condensation and transcription.
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59
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Ragoczy T, Telling A, Scalzo D, Kooperberg C, Groudine M. Functional redundancy in the nuclear compartmentalization of the late-replicating genome. Nucleus 2014; 5:626-35. [PMID: 25493640 PMCID: PMC4615584 DOI: 10.4161/19491034.2014.990863] [Citation(s) in RCA: 29] [Impact Index Per Article: 2.6] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 09/12/2014] [Revised: 10/15/2014] [Accepted: 10/24/2014] [Indexed: 12/14/2022] Open
Abstract
The eukaryotic nucleus is structurally and functionally organized, as reflected in the distribution of its protein and DNA components. The genome itself is segregated into euchromatin and heterochromatin that replicate in a distinct spatio-temporal manner. We used a combination of fluorescence in situ hybridization (FISH) and DamID to investigate the localization of the early and late replicating components of the genome in a lymphoblastoid cell background. Our analyses revealed that the bulk of late replicating chromatin localizes to the nuclear peripheral heterochromatin (PH) in a chromosome size and gene density dependent manner. Late replicating DNA on small chromosomes exhibits a much lower tendency to localize to PH and tends to associate with alternate repressive subcompartments such as pericentromeric (PCH) and perinucleolar heterochromatin (PNH). Furthermore, multicolor FISH analysis revealed that late replicating loci, particularly on the smaller chromosomes, may associate with any of these 3 repressive subcompartments, including more than one at the same time. These results suggest a functional equivalence or redundancy among the 3 subcompartments. Consistent with this notion, disruption of nucleoli resulted in an increased association of late replicating loci with peripheral heterochromatin. Our analysis reveals that rather than considering the morphologically distinct PH, PCH and PNH as individual subcompartments, they should be considered in aggregate as a functional compartment for late replicating chromatin.
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Key Words
- Chr, chromosome
- DamID
- DamID, Dam identification
- EU, 5-Ethynyl uridine
- FISH, fluorescence in situ hybridization
- LAD, lamina associated domain
- NOR, nucleolar organizing region
- PCH, pericentromeric heterochromatin
- PH, peripheral heterochromatin
- PNH, perinucleolar heterochromatin
- heterochromatin
- localization
- nuclear organization
- nuclear periphery, pericentromeric heterochromatin
- perinucleolar heterochromatin
- replication timing
- repressive compartments
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Affiliation(s)
- Tobias Ragoczy
- Division of Basic Sciences; Fred Hutchinson Cancer Research Center; Seattle, WA USA
| | - Agnes Telling
- Division of Basic Sciences; Fred Hutchinson Cancer Research Center; Seattle, WA USA
| | - David Scalzo
- Division of Basic Sciences; Fred Hutchinson Cancer Research Center; Seattle, WA USA
| | - Charles Kooperberg
- Division of Public Health Sciences; Fred Hutchinson Cancer Research Center; Seattle, WA USA
| | - Mark Groudine
- Division of Basic Sciences; Fred Hutchinson Cancer Research Center; Seattle, WA USA
- Department of Radiation Oncology; University of Washington School of Medicine; Seattle, WA USA
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60
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Influence of long terminal repeat retrotransposons in the genomes of fission yeasts. Biochem Soc Trans 2013; 41:1629-33. [DOI: 10.1042/bst20130207] [Citation(s) in RCA: 4] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/17/2022]
Abstract
LTR (long terminal repeat) RTs (retrotransposons) are almost ubiquitous in eukaryotic genomes. Their abundance and selfish properties make them a major influence in the regulation and evolution of their host genome. Recently, several striking properties of the LTR RTs of fission yeast have been uncovered, affecting important cellular processes such as gene regulation, nuclear architecture and genome integrity. The present review summarizes the current information and puts it in the context of the wider search for understanding the influence of transposable elements on the host genome.
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61
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Condensin II subunit dCAP-D3 restricts retrotransposon mobilization in Drosophila somatic cells. PLoS Genet 2013; 9:e1003879. [PMID: 24204294 PMCID: PMC3814330 DOI: 10.1371/journal.pgen.1003879] [Citation(s) in RCA: 20] [Impact Index Per Article: 1.7] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 04/05/2013] [Accepted: 08/29/2013] [Indexed: 11/19/2022] Open
Abstract
Retrotransposon sequences are positioned throughout the genome of almost every eukaryote that has been sequenced. As mobilization of these elements can have detrimental effects on the transcriptional regulation and stability of an organism's genome, most organisms have evolved mechanisms to repress their movement. Here, we identify a novel role for the Drosophila melanogaster Condensin II subunit, dCAP-D3 in preventing the mobilization of retrotransposons located in somatic cell euchromatin. dCAP-D3 regulates transcription of euchromatic gene clusters which contain or are proximal to retrotransposon sequence. ChIP experiments demonstrate that dCAP-D3 binds to these loci and is important for maintaining a repressed chromatin structure within the boundaries of the retrotransposon and for repressing retrotransposon transcription. We show that dCAP-D3 prevents accumulation of double stranded DNA breaks within retrotransposon sequence, and decreased dCAP-D3 levels leads to a precise loss of retrotransposon sequence at some dCAP-D3 regulated gene clusters and a gain of sequence elsewhere in the genome. Homologous chromosomes exhibit high levels of pairing in Drosophila somatic cells, and our FISH analyses demonstrate that retrotransposon-containing euchromatic loci are regions which are actually less paired than euchromatic regions devoid of retrotransposon sequences. Decreased dCAP-D3 expression increases pairing of homologous retrotransposon-containing loci in tissue culture cells. We propose that the combined effects of dCAP-D3 deficiency on double strand break levels, chromatin structure, transcription and pairing at retrotransposon-containing loci may lead to 1) higher levels of homologous recombination between repeats flanking retrotransposons in dCAP-D3 deficient cells and 2) increased retrotransposition. These findings identify a novel role for the anti-pairing activities of dCAP-D3/Condensin II and uncover a new way in which dCAP-D3/Condensin II influences local chromatin structure to help maintain genome stability. Condensins are conserved complexes that are well known for their roles in promoting the efficient condensation of chromosomes during early mitosis. Previously, we have shown that the Drosophila Condensin II subunit, dCAP-D3, also functions to regulate transcription in somatic cells during the later stages of development. A significant number of dCAP-D3 regulated genes were found to be positioned very close to one another in clusters. In this study, we report that some of the most strongly regulated dCAP-D3 gene clusters are positioned near retrotransposons. Unexpectedly, we find that decreased dCAP-D3 expression results in a precise loss of retrotransposon sequence at these loci. Additionally, dCAP-D3 knockdown causes increased levels of double strand breaks within retrotransposon sequence, an opening of the chromatin in the region, increased retrotransposon transcription and a very significant increase in homologous pairing at the locus. Taken together, these results suggest that dCAP-D3/Condensin II functions to prevent recombination of retrotransposons between homologous chromosomes and possibly retrotransposition as well. This report identifies a novel function for Condensin II that may contribute to its role in genome organization.
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62
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Steglich B, Sazer S, Ekwall K. Transcriptional regulation at the yeast nuclear envelope. Nucleus 2013; 4:379-89. [PMID: 24021962 DOI: 10.4161/nucl.26394] [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: 12/12/2022] Open
Abstract
The spatial organization of the genome inside the nucleus affects many nuclear processes, such as DNA replication, DNA repair, and gene transcription. In metazoans, the nuclear periphery harbors mainly repressed genes that associate with the nuclear lamina. This review discusses how peripheral positioning is connected to transcriptional regulation in yeasts. Tethering of reporter genes to the nuclear envelope was found to result in transcriptional silencing. Similarly, repression of the silent mating type loci and subtelomeric genes is influenced by their position close to the nuclear envelope. In contrast, active genes are bound by nucleoporins and inducible genes associate with the nuclear pore complex upon activation. Taken together, these results portray the nuclear envelope as a platform for transcriptional regulation, both through activation at nuclear pores and silencing at the nuclear envelope.
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Affiliation(s)
- Babett Steglich
- Department of Biosciences and Nutrition; Center for Biosciences; Karolinska Institutet; Huddinge, Sweden; Verna and Marrs McLean Department of Biochemistry and Molecular Biology; Baylor College of Medicine; Houston, TX USA; Department of Molecular and Cellular Biology; Baylor College of Medicine; Houston, TX USA
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63
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Kim KD, Tanizawa H, Iwasaki O, Corcoran CJ, Capizzi JR, Hayden JE, Noma KI. Centromeric motion facilitates the mobility of interphase genomic regions in fission yeast. J Cell Sci 2013; 126:5271-83. [PMID: 23986481 DOI: 10.1242/jcs.133678] [Citation(s) in RCA: 15] [Impact Index Per Article: 1.3] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/12/2022] Open
Abstract
Dispersed genetic elements, such as retrotransposons and Pol-III-transcribed genes, including tRNA and 5S rRNA, cluster and associate with centromeres in fission yeast through the function of condensin. However, the dynamics of these condensin-mediated genomic associations remains unknown. We have examined the 3D motions of genomic loci including the centromere, telomere, rDNA repeat locus, and the loci carrying Pol-III-transcribed genes or long-terminal repeat (LTR) retrotransposons in live cells at as short as 1.5-second intervals. Treatment with carbendazim (CBZ), a microtubule-destabilizing agent, not only prevents centromeric motion, but also reduces the mobility of the other genomic loci during interphase. Further analyses demonstrate that condensin-mediated associations between centromeres and the genomic loci are clonal, infrequent and transient. However, when associated, centromeres and the genomic loci migrate together in a coordinated fashion. In addition, a condensin mutation that disrupts associations between centromeres and the genomic loci results in a concomitant decrease in the mobility of the loci. Our study suggests that highly mobile centromeres pulled by microtubules in cytoplasm serve as 'genome mobility elements' by facilitating physical relocations of associating genomic regions.
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Affiliation(s)
- Kyoung-Dong Kim
- The Wistar Institute, Spruce Street, Philadelphia, PA 19104, USA
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64
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Ritland Politz JC, Scalzo D, Groudine M. Something silent this way forms: the functional organization of the repressive nuclear compartment. Annu Rev Cell Dev Biol 2013; 29:241-70. [PMID: 23834025 PMCID: PMC3999972 DOI: 10.1146/annurev-cellbio-101512-122317] [Citation(s) in RCA: 87] [Impact Index Per Article: 7.3] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/10/2023]
Abstract
The repressive compartment of the nucleus is comprised primarily of telomeric and centromeric regions, the silent portion of ribosomal RNA genes, the majority of transposable element repeats, and facultatively repressed genes specific to different cell types. This compartment localizes into three main regions: the peripheral heterochromatin, perinucleolar heterochromatin, and pericentromeric heterochromatin. Both chromatin remodeling proteins and transcription of noncoding RNAs are involved in maintenance of repression in these compartments. Global reorganization of the repressive compartment occurs at each cell division, during early development, and during terminal differentiation. Differential action of chromatin remodeling complexes and boundary element looping activities are involved in mediating these organizational changes. We discuss the evidence that heterochromatin formation and compartmentalization may drive nuclear organization.
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Affiliation(s)
| | - David Scalzo
- Basic Sciences, Fred Hutchinson Cancer Research Center, Seattle, Washington 98109
| | - Mark Groudine
- Basic Sciences, Fred Hutchinson Cancer Research Center, Seattle, Washington 98109
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65
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Woolcock KJ, Bühler M. Nuclear organisation and RNAi in fission yeast. Curr Opin Cell Biol 2013; 25:372-7. [DOI: 10.1016/j.ceb.2013.02.004] [Citation(s) in RCA: 4] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 11/27/2012] [Accepted: 02/05/2013] [Indexed: 12/20/2022]
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66
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Piazza I, Haering CH, Rutkowska A. Condensin: crafting the chromosome landscape. Chromosoma 2013; 122:175-90. [DOI: 10.1007/s00412-013-0405-1] [Citation(s) in RCA: 33] [Impact Index Per Article: 2.8] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 01/10/2013] [Revised: 03/03/2013] [Accepted: 03/04/2013] [Indexed: 02/06/2023]
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