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酸性补丁组蛋白突变及其对核小体重塑的影响。

Acidic patch histone mutations and their effects on nucleosome remodeling.

作者信息

Dao Hai T, Pham Linh T D

机构信息

Department of Chemical Biology and Therapeutics, St. Jude Children's Research Hospital, Memphis, Tennessee 38105, U.S.A.

Global Pediatric Medicine, St. Jude Children's Research Hospital, Memphis, Tennessee 38105, U.S.A.

出版信息

Biochem Soc Trans. 2022 Apr 29;50(2):907-919. doi: 10.1042/BST20210773.

DOI:10.1042/BST20210773
PMID:35356970
Abstract

Structural and biochemical studies have identified a histone surface on each side of the nucleosome disk termed 'the nucleosome acidic patch' that acts as a regulatory hub for the function of numerous nuclear proteins, including ATP-dependent chromatin complexes (remodelers). Four major remodeler subfamilies, SWI/SNF, ISWI, CHD, and INO80, have distinct modes of interaction with one or both nucleosome acidic patches, contributing to their specific remodeling outcomes. Genome-wide sequencing analyses of various human cancers have uncovered high-frequency mutations in histone coding genes, including some that map to the acidic patch. How cancer-related acidic patch histone mutations affect nucleosome remodeling is mainly unknown. Recent advances in in vitro chromatin reconstitution have enabled access to physiologically relevant nucleosomes, including asymmetric nucleosomes that possess both wild-type and acidic patch mutant histone copies. Biochemical investigation of these substrates revealed unexpected remodeling outcomes with far-reaching implications for alteration of chromatin structure. This review summarizes recent findings of how different remodeler families interpret wild-type and mutant acidic patches for their remodeling functions and discusses models for remodeler-mediated changes in chromatin landscapes as a consequence of acidic patch mutations.

摘要

结构和生化研究已在核小体盘两侧确定了一个组蛋白表面,称为“核小体酸性斑块”,它作为众多核蛋白功能的调控中心,包括依赖ATP的染色质复合物(重塑因子)。四个主要的重塑因子亚家族,即SWI/SNF、ISWI、CHD和INO80,与一个或两个核小体酸性斑块具有不同的相互作用模式,这有助于它们产生特定的重塑结果。对各种人类癌症的全基因组测序分析发现了组蛋白编码基因中的高频突变,其中一些突变定位在酸性斑块上。癌症相关的酸性斑块组蛋白突变如何影响核小体重塑主要尚不清楚。体外染色质重建的最新进展使得能够获得生理相关的核小体,包括同时拥有野生型和酸性斑块突变组蛋白拷贝的不对称核小体。对这些底物的生化研究揭示了意想不到的重塑结果,对染色质结构的改变具有深远影响。本综述总结了不同重塑因子家族如何解读野生型和突变型酸性斑块以实现其重塑功能的最新发现,并讨论了由于酸性斑块突变导致重塑因子介导的染色质景观变化的模型。

相似文献

1
Acidic patch histone mutations and their effects on nucleosome remodeling.酸性补丁组蛋白突变及其对核小体重塑的影响。
Biochem Soc Trans. 2022 Apr 29;50(2):907-919. doi: 10.1042/BST20210773.
2
Asymmetry between the two acidic patches dictates the direction of nucleosome sliding by the ISWI chromatin remodeler.两个酸性斑之间的不对称性决定了 ISWI 染色质重塑酶介导核小体滑动的方向。
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A basic motif anchoring ISWI to nucleosome acidic patch regulates nucleosome spacing.一个基本的基序将 ISWI 锚定在核小体酸性斑上,调节核小体的间距。
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Chromatin remodeling by imitation switch (ISWI) class ATP-dependent remodelers is stimulated by histone variant H2A.Z.组蛋白变体 H2A.Z 可刺激模拟开关(ISWI)类 ATP 依赖性重塑酶进行染色质重塑。
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The nucleosomal acidic patch relieves auto-inhibition by the ISWI remodeler SNF2h.核小体酸性斑通过释放 ISWI 重塑因子 SNF2h 来解除自身抑制。
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Dual engagement of the nucleosomal acidic patches is essential for deposition of histone H2A.Z by SWR1C.核小体酸性斑的双重结合对于 SWR1C 沉积组蛋白 H2A.Z 是必不可少的。
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Remodelers organize cellular chromatin by counteracting intrinsic histone-DNA sequence preferences in a class-specific manner.重塑因子以特定于类别的方式对抗内在的组蛋白-DNA 序列偏好来组织细胞染色质。
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The chromatin remodelers RSC and ISW1 display functional and chromatin-based promoter antagonism.染色质重塑因子RSC和ISW1表现出功能上以及基于染色质的启动子拮抗作用。
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Chromatin modification by PSC occurs at one PSC per nucleosome and does not require the acidic patch of histone H2A.PSC 通过单个核小体发生染色质修饰,并且不依赖于组蛋白 H2A 的酸性斑。
PLoS One. 2012;7(10):e47162. doi: 10.1371/journal.pone.0047162. Epub 2012 Oct 11.

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Testis-specific H2B.W1 disrupts nucleosome integrity by reducing DNA-histone interactions.睾丸特异性 H2B.W1 通过减少 DNA-组蛋白相互作用破坏核小体完整性。
Nucleic Acids Res. 2024 Oct 28;52(19):11612-11625. doi: 10.1093/nar/gkae825.
3
Structural biology of shelterin and telomeric chromatin: the pieces and an unfinished puzzle.端粒蛋白复合体与端粒染色质的结构生物学:零碎的片段与未完成的谜题
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Conformational switching of Arp5 subunit differentially regulates INO80 chromatin remodeling.Arp5亚基的构象转换对INO80染色质重塑具有不同的调节作用。
bioRxiv. 2024 May 11:2024.05.10.593625. doi: 10.1101/2024.05.10.593625.
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A SAM-key domain required for enzymatic activity of the Fun30 nucleosome remodeler.一个 SAM 结构域对于 Fun30 核小体重塑酶的酶活性是必需的。
Life Sci Alliance. 2023 Jul 19;6(9). doi: 10.26508/lsa.202201790. Print 2023 Sep.
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(mis)-Targeting of SWI/SNF complex(es) in cancer.(错)靶向 SWI/SNF 复合物(es)治疗癌症。
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