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2
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3
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关键残基 W320 结构基础,该残基负责 Hsp90 构象变化。

Structural basis of the key residue W320 responsible for Hsp90 conformational change.

机构信息

Department of Biochemistry and Molecular Biology, Oklahoma State University, Stillwater, OK, USA.

出版信息

J Biomol Struct Dyn. 2023 Nov;41(19):9745-9755. doi: 10.1080/07391102.2022.2146197. Epub 2022 Nov 14.

DOI:10.1080/07391102.2022.2146197
PMID:36373326
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10183053/
Abstract

The 90-kDa heat shock protein (Hsp90) is a homodimeric molecular chaperone with ATPase activity, which has become an intensely studied target for the development of drugs for the treatment of cancer, neurodegenerative and infectious diseases. The equilibrium between Hsp90 dimers and oligomers is important for modulating its function. In the absence of ATP, the passive chaperone activity of Hsp90 dimers and oligomers has been shown to stabilize client proteins as a holdase, which enhances substrate binding and prevents irreversible aggregation and precipitation of the substrate proteins. In the presence of ATP and its associated cochaperones, Hsp90 homodimers act as foldases with the binding and hydrolysis of ATP driving conformational changes that mediate client folding. Crystal structures of both wild type and W320A mutant Hsp90αMC (middle/C-terminal domain) have been determined, which displayed a preference for hexameric and dimeric states, respectively. Structural analysis showed that W320 is a key residue for Hsp90 oligomerization by forming intermolecular interactions at the Hsp90 hexameric interface through cation-π interactions with R367. W320A substitution results in the formation of a more open conformation of Hsp90, which has not previously been reported, and the induction of a conformational change in the catalytic loop. The structures provide new insights into the mechanism by which W320 functions as a key switch for conformational changes in Hsp90 self-oligomerization, and binding cochaperones and client proteins.Communicated by Ramaswamy H. Sarma.

摘要

90kDa 热休克蛋白(Hsp90)是一种具有 ATP 酶活性的同源二聚体分子伴侣,已成为开发用于治疗癌症、神经退行性和传染病的药物的研究热点。Hsp90 二聚体和寡聚体之间的平衡对于调节其功能很重要。在没有 ATP 的情况下,已经表明 Hsp90 二聚体和寡聚体的被动伴侣活性可以作为持留酶稳定客户蛋白,从而增强底物结合并防止底物蛋白的不可逆聚集和沉淀。在存在 ATP 及其相关共伴侣的情况下,Hsp90 同源二聚体作为折叠酶发挥作用,ATP 的结合和水解驱动构象变化,介导客户蛋白折叠。已经确定了野生型和 W320A 突变体 Hsp90αMC(中/末端结构域)的晶体结构,它们分别显示出对六聚体和二聚体状态的偏好。结构分析表明,W320 通过与 R367 形成阳离子-π 相互作用,在 Hsp90 六聚体界面上形成分子间相互作用,是寡聚化的关键残基。W320A 取代导致 Hsp90 形成以前未报道过的更开放的构象,并诱导催化环的构象变化。这些结构为 W320 作为 Hsp90 自寡聚化、结合共伴侣和客户蛋白构象变化的关键开关的作用机制提供了新的见解。由 Ramaswamy H. Sarma 传达。