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染色质结构、黏连蛋白活性和转录之间的串扰。

Crosstalk between chromatin structure, cohesin activity and transcription.

机构信息

Department of Genome Biology, Andalusian Molecular Biology and Regenerative Medicine (CABIMER), CSIC-University of Seville-University Pablo de Olavide, Seville, Spain.

Genomic Unit, Andalusian Molecular Biology and Regenerative Medicine Center (CABIMER), CSIC-University of Seville-University Pablo de Olavide, Seville, Spain.

出版信息

Epigenetics Chromatin. 2019 Jul 22;12(1):47. doi: 10.1186/s13072-019-0293-6.

Abstract

BACKGROUND

A complex interplay between chromatin and topological machineries is critical for genome architecture and function. However, little is known about these reciprocal interactions, even for cohesin, despite its multiple roles in DNA metabolism.

RESULTS

We have used genome-wide analyses to address how cohesins and chromatin structure impact each other in yeast. Cohesin inactivation in scc1-73 mutants during the S and G2 phases causes specific changes in chromatin structure that preferentially take place at promoters; these changes include a significant increase in the occupancy of the - 1 and + 1 nucleosomes. In addition, cohesins play a major role in transcription regulation that is associated with specific promoter chromatin architecture. In scc1-73 cells, downregulated genes are enriched in promoters with short or no nucleosome-free region (NFR) and a fragile "nucleosome - 1/RSC complex" particle. These results, together with a preferential increase in the occupancy of nucleosome - 1 of these genes, suggest that cohesins promote transcription activation by helping RSC to form the NFR. In sharp contrast, the scc1-73 upregulated genes are enriched in promoters with an "open" chromatin structure and are mostly at cohesin-enriched regions, suggesting that a local accumulation of cohesins might help to inhibit transcription. On the other hand, a dramatic loss of chromatin integrity by histone depletion during DNA replication has a moderate effect on the accumulation and distribution of cohesin peaks along the genome.

CONCLUSIONS

Our analyses of the interplay between chromatin integrity and cohesin activity suggest that cohesins play a major role in transcription regulation, which is associated with specific chromatin architecture and cohesin-mediated nucleosome alterations of the regulated promoters. In contrast, chromatin integrity plays only a minor role in the binding and distribution of cohesins.

摘要

背景

染色质和拓扑结构机器之间的复杂相互作用对于基因组结构和功能至关重要。然而,尽管黏连蛋白在 DNA 代谢中具有多种作用,但对于这些相互作用,我们知之甚少,甚至对黏连蛋白也知之甚少。

结果

我们利用全基因组分析来研究酵母中黏连蛋白和染色质结构如何相互影响。在 S 和 G2 期,scc1-73 突变体中的黏连蛋白失活会导致染色质结构的特异性变化,这些变化主要发生在启动子处;这些变化包括 -1 和 +1 核小体的占有率显著增加。此外,黏连蛋白在转录调控中起着重要作用,与特定的启动子染色质结构有关。在 scc1-73 细胞中,下调的基因在启动子处富集,这些启动子具有短或无核小体游离区(NFR)和脆弱的“核小体 -1/RSC 复合物”颗粒。这些结果,以及这些基因中核小体 -1 占有率的优先增加,表明黏连蛋白通过帮助 RSC 形成 NFR 来促进转录激活。相比之下,scc1-73 上调的基因在具有“开放”染色质结构的启动子处富集,并且主要位于黏连蛋白富集区域,表明局部积累的黏连蛋白可能有助于抑制转录。另一方面,在 DNA 复制过程中,组蛋白耗竭导致染色质完整性的急剧丧失,对黏合蛋白峰在基因组上的积累和分布的影响适中。

结论

我们对染色质完整性和黏合蛋白活性之间相互作用的分析表明,黏合蛋白在转录调控中起着重要作用,这与特定的染色质结构和黏合蛋白介导的调节启动子的核小体改变有关。相比之下,染色质完整性在黏合蛋白的结合和分布中只起次要作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f53c/6647288/f3d18096710c/13072_2019_293_Fig1_HTML.jpg

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