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Lamina-Dependent Stretching and Unconventional Chromosome Compartments in Early C. elegans Embryos.早期 C. elegans 胚胎中依赖于板层的伸展和非常规染色体区室。
Mol Cell. 2020 Apr 2;78(1):96-111.e6. doi: 10.1016/j.molcel.2020.02.006. Epub 2020 Feb 26.
2
On the existence and functionality of topologically associating domains.拓扑关联域的存在与功能
Nat Genet. 2020 Jan;52(1):8-16. doi: 10.1038/s41588-019-0561-1. Epub 2020 Jan 10.
3
Developmentally regulated expression is robust to TAD perturbations.发育调控表达对 TAD 扰动具有鲁棒性。
Development. 2019 Sep 30;146(19):dev179523. doi: 10.1242/dev.179523.
4
Chromatin conformation remains stable upon extensive transcriptional changes driven by heat shock.染色质构象在热休克驱动的广泛转录变化下保持稳定。
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X Chromosome Domain Architecture Regulates Caenorhabditis elegans Lifespan but Not Dosage Compensation.X 染色体结构域调控秀丽隐杆线虫的寿命,但不调控剂量补偿。
Dev Cell. 2019 Oct 21;51(2):192-207.e6. doi: 10.1016/j.devcel.2019.08.004. Epub 2019 Sep 5.
6
Functional dissection of the Sox9-Kcnj2 locus identifies nonessential and instructive roles of TAD architecture.功能剖析 Sox9-Kcnj2 基因座揭示了 TAD 结构的非必要和指导作用。
Nat Genet. 2019 Aug;51(8):1263-1271. doi: 10.1038/s41588-019-0466-z. Epub 2019 Jul 29.
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Two major mechanisms of chromosome organization.两种主要的染色体组织机制。
Curr Opin Cell Biol. 2019 Jun;58:142-152. doi: 10.1016/j.ceb.2019.05.001. Epub 2019 Jun 20.
8
Regulatory Landscaping: How Enhancer-Promoter Communication Is Sculpted in 3D.调控景观:增强子-启动子通讯如何在 3D 中被塑造。
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Predicting three-dimensional genome organization with chromatin states.基于染色质状态预测三维基因组结构。
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10
Heterochromatin drives compartmentalization of inverted and conventional nuclei.异染色质驱动倒位和常规核的区室化。
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组蛋白 H3K9 甲基化通过染色体紧缩和核周锚定促进 的基因组区室形成。

Histone H3K9 methylation promotes formation of genome compartments in via chromosome compaction and perinuclear anchoring.

机构信息

Department of Molecular and Cell Biology, University of California, Berkeley, CA 94720.

Howard Hughes Medical Institute, University of California, Berkeley, CA 94720.

出版信息

Proc Natl Acad Sci U S A. 2020 May 26;117(21):11459-11470. doi: 10.1073/pnas.2002068117. Epub 2020 May 8.

DOI:10.1073/pnas.2002068117
PMID:32385148
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7261013/
Abstract

Genomic regions preferentially associate with regions of similar transcriptional activity, partitioning genomes into active and inactive compartments within the nucleus. Here we explore mechanisms controlling genome compartment organization in and investigate roles for compartments in regulating gene expression. Distal arms of chromosomes, which are enriched for heterochromatic histone modifications H3K9me1/me2/me3, interact with each other both and while interacting less frequently with central regions, leading to genome compartmentalization. Arms are anchored to the nuclear periphery via the nuclear envelope protein CEC-4, which binds to H3K9me. By performing genome-wide chromosome conformation capture experiments (Hi-C), we showed that eliminating H3K9me1/me2/me3 through mutations in the methyltransferase genes and significantly impaired formation of inactive Arm and active Center compartments. mutations also impaired compartmentalization, but to a lesser extent. We found that H3K9me promotes compartmentalization through two distinct mechanisms: Perinuclear anchoring of chromosome arms via CEC-4 to promote their association, and an anchoring-independent mechanism that compacts individual chromosome arms. In both and mutants, no dramatic changes in gene expression were found for genes that switched compartments or for genes that remained in their original compartment, suggesting that compartment strength does not dictate gene-expression levels. Furthermore, H3K9me, but not perinuclear anchoring, also contributes to formation of another prominent feature of chromosome organization, megabase-scale topologically associating domains on X established by the dosage compensation condensin complex. Our results demonstrate that H3K9me plays crucial roles in regulating genome organization at multiple levels.

摘要

基因组区域优先与转录活性相似的区域相关联,从而将基因组划分为核内的活性和非活性隔室。在这里,我们探索了控制基因组隔室组织的机制,并研究了隔室在调节基因表达中的作用。 染色体的远端臂富含异染色质组蛋白修饰 H3K9me1/me2/me3,它们在 和 中相互作用,而与中央区域的相互作用频率较低,导致基因组隔室化。臂通过与 H3K9me 结合的核膜蛋白 CEC-4 锚定到核的外周。通过进行全基因组染色体构象捕获实验(Hi-C),我们表明,通过甲基转移酶基因 和 的突变消除 H3K9me1/me2/me3 会显著损害失活的 Arm 和活性的 Center 隔室的形成。 突变也会损害隔室化,但程度较小。我们发现 H3K9me 通过两种不同的机制促进隔室化:通过 CEC-4 对染色体臂进行核周锚定以促进它们的 关联,以及一种不依赖于锚定的机制,可压缩单个染色体臂。在 和 突变体中,对于那些切换隔室的基因或那些仍然处于其原始隔室的基因,没有发现明显的基因表达变化,这表明隔室强度并不决定基因表达水平。此外,H3K9me(而非核周锚定)也有助于形成另一个染色体组织的突出特征,即由剂量补偿凝聚素复合物建立的 X 上的兆碱基尺度拓扑关联域。我们的结果表明,H3K9me 在多个层面上对调节基因组组织起着至关重要的作用。