PHF1 compartmentalizes PRC2 via phase separation.

IF 4.4 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Genzhe Lu, Pilong Li
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引用次数: 0

Abstract

Polycomb repressive complex 2 (PRC2) is central to polycomb repression as it trimethylates lysine 27 on histone H3 (H3K27me3). How PRC2 is recruited to its targets to deposit H3K27me3 remains an open question. Polycomb-like (PCL) proteins, a group of conserved PRC2 accessory proteins, can direct PRC2 to its targets. In this report, we demonstrate that a PCL protein named PHF1 forms phase-separated condensates at H3K27me3 loci that recruit PRC2. Combining cellular observation and biochemical reconstitution, we show that the N-terminal domains of PHF1 cooperatively mediate target recognition, the chromo-like domain recruits PRC2, and the intrinsically disordered region (IDR) drives phase separation. Moreover, we reveal that the condensates compartmentalize PRC2, DNA, and nucleosome arrays by phase separation. Luciferase reporter assays confirm that PHF1 phase separation promotes transcription repression, further supporting a role of the condensates in polycomb repression. Based on our findings, we propose that these condensates create favorable microenvironments at the target loci for PRC2 to function.

PHF1通过相分离来划分PRC2。
多梳抑制复合物2(PRC2)是多梳抑制的核心,因为它使组蛋白H3(H3K27me3)上的赖氨酸27三甲化。PRC2如何被招募到其目标中以沉积H3K27me3仍然是一个悬而未决的问题。多梳样蛋白(PCL)是一组保守的PRC2辅助蛋白,可以将PRC2导向其靶点。在本报告中,我们证明了一种名为PHF1的PCL蛋白在募集PRC2的H3K27me3基因座上形成相分离的缩合物。结合细胞观察和生物化学重建,我们发现PHF1的N末端结构域协同介导靶标识别,类色结构域募集PRC2,而本质无序区(IDR)驱动相分离。此外,我们发现缩合物通过相分离将PRC2、DNA和核小体阵列区隔。萤光素酶报告基因测定证实PHF1相分离促进转录抑制,进一步支持缩合物在多梳抑制中的作用。基于我们的发现,我们提出这些缩合物在PRC2发挥作用的靶基因座上创造了有利的微环境。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biochemical Journal
Biochemical Journal 生物-生化与分子生物学
CiteScore
8.00
自引率
0.00%
发文量
255
审稿时长
1 months
期刊介绍: Exploring the molecular mechanisms that underpin key biological processes, the Biochemical Journal is a leading bioscience journal publishing high-impact scientific research papers and reviews on the latest advances and new mechanistic concepts in the fields of biochemistry, cellular biosciences and molecular biology. The Journal and its Editorial Board are committed to publishing work that provides a significant advance to current understanding or mechanistic insights; studies that go beyond observational work using in vitro and/or in vivo approaches are welcomed. Painless publishing: All papers undergo a rigorous peer review process; however, the Editorial Board is committed to ensuring that, if revisions are recommended, extra experiments not necessary to the paper will not be asked for. Areas covered in the journal include: Cell biology Chemical biology Energy processes Gene expression and regulation Mechanisms of disease Metabolism Molecular structure and function Plant biology Signalling
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