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SWI/SNF 复合物组分 Smarce1 突变降低胚胎干细胞中的核小体稳定性并损害分化。

Mutation of the SWI/SNF complex component Smarce1 decreases nucleosome stability in embryonic stem cells and impairs differentiation.

机构信息

Department of Physiology II, Nara Medical University, Kashihara, Nara 634-8521, Japan.

Division of Cancer Biology, Nagoya University Graduate School of Medicine, Nagoya, Aichi 466-8550, Japan.

出版信息

J Cell Sci. 2024 Mar 15;137(6). doi: 10.1242/jcs.260467. Epub 2024 Mar 21.

Abstract

The SWI/SNF chromatin remodeling complex consists of more than ten component proteins that form a large protein complex of >1 MDa. The catalytic proteins Smarca4 or Smarca2 work in concert with the component proteins to form a chromatin platform suitable for transcriptional regulation. However, the mechanism by which each component protein works synergistically with the catalytic proteins remains largely unknown. Here, we report on the function of Smarce1, a component of the SWI/SNF complex, through the phenotypic analysis of homozygous mutant embryonic stem cells (ESCs). Disruption of Smarce1 induced the dissociation of other complex components from the SWI/SNF complex. Histone binding to DNA was loosened in homozygous mutant ESCs, indicating that disruption of Smarce1 decreased nucleosome stability. Sucrose gradient sedimentation analysis suggested that there was an ectopic genomic distribution of the SWI/SNF complex upon disruption of Smarce1, accounting for the misregulation of chromatin conformations. Unstable nucleosomes remained during ESC differentiation, impairing the heterochromatin formation that is characteristic of the differentiation process. These results suggest that Smarce1 guides the SWI/SNF complex to the appropriate genomic regions to generate chromatin structures adequate for transcriptional regulation.

摘要

SWI/SNF 染色质重塑复合物由十多种组成蛋白组成,形成一个超过 1 MDa 的大型蛋白质复合物。催化蛋白 Smarca4 或 Smarca2 与组成蛋白协同工作,形成适合转录调控的染色质平台。然而,每个组成蛋白与催化蛋白协同工作的机制在很大程度上仍然未知。在这里,我们通过纯合突变胚胎干细胞(ESCs)的表型分析报告了 SWI/SNF 复合物成分 Smarce1 的功能。Smarce1 的破坏诱导其他复合物成分从 SWI/SNF 复合物中解离。组蛋白与 DNA 的结合变松,表明 Smarce1 的破坏降低了核小体的稳定性。蔗糖梯度沉降分析表明,在 Smarce1 破坏后,SWI/SNF 复合物存在异位基因组分布,导致染色质构象的失调。不稳定的核小体在 ESC 分化过程中仍然存在,破坏了分化过程中特有的异染色质形成。这些结果表明 Smarce1 指导 SWI/SNF 复合物到适当的基因组区域,以产生适合转录调控的染色质结构。

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