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本文引用的文献

1
Client-loading conformation of the Hsp90 molecular chaperone revealed in the cryo-EM structure of the human Hsp90:Hop complex.人源 Hsp90:Hop 复合物冷冻电镜结构中揭示的 Hsp90 分子伴侣的客户加载构象。
Mol Cell. 2011 Jun 24;42(6):771-81. doi: 10.1016/j.molcel.2011.04.023.
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Conformational dynamics of the molecular chaperone Hsp90.分子伴侣 Hsp90 的构象动力学。
Q Rev Biophys. 2011 May;44(2):229-55. doi: 10.1017/S0033583510000314. Epub 2011 Mar 18.
3
Hsp90 can accommodate the simultaneous binding of the FKBP52 and HOP proteins.热休克蛋白90(Hsp90)能够容纳FKBP52和HOP蛋白的同时结合。
Oncotarget. 2011 Jan-Feb;2(1-2):43-58. doi: 10.18632/oncotarget.225.
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Mass spectrometry reveals stable modules in holo and apo RNA polymerases I and III.质谱分析揭示了完整和去磷酸化 RNA 聚合酶 I 和 III 的稳定模块。
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N-terminal domain of human Hsp90 triggers binding to the cochaperone p23.人热休克蛋白 90 的 N 端结构域触发与共伴侣蛋白 p23 的结合。
Proc Natl Acad Sci U S A. 2011 Jan 11;108(2):580-5. doi: 10.1073/pnas.1011867108. Epub 2010 Dec 23.
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Mixed Hsp90-cochaperone complexes are important for the progression of the reaction cycle.混合的 HSP90-共伴侣复合物对于反应循环的进展很重要。
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Balance between folding and degradation for Hsp90-dependent client proteins: a key role for CHIP.Hsp90 依赖性客户蛋白的折叠和降解之间的平衡:CHIP 的关键作用。
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Quaternary dynamics and plasticity underlie small heat shock protein chaperone function.四级动力学和塑性基础上的小分子热休克蛋白伴侣功能。
Proc Natl Acad Sci U S A. 2010 Feb 2;107(5):2007-12. doi: 10.1073/pnas.0910126107. Epub 2010 Jan 19.
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热休克蛋白 90 伴侣复合物组装的异质性和动力学。

Heterogeneity and dynamics in the assembly of the heat shock protein 90 chaperone complexes.

机构信息

Department of Chemistry, University of Oxford, South Parks Road, Oxford OX1 3TA, United Kingdom.

出版信息

Proc Natl Acad Sci U S A. 2011 Nov 1;108(44):17939-44. doi: 10.1073/pnas.1106261108. Epub 2011 Oct 19.

DOI:10.1073/pnas.1106261108
PMID:22011577
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3207645/
Abstract

The Hsp90 cycle depends on the coordinated activity of a range of cochaperones, including Hop, Hsp70 and peptidyl-prolyl isomerases such as FKBP52. Using mass spectrometry, we investigate the order of addition of these cochaperones and their effects on the stoichiometry and composition of the resulting Hsp90-containing complexes. Our results show that monomeric Hop binds specifically to the Hsp90 dimer whereas FKBP52 binds to both monomeric and dimeric forms of Hsp90. By preforming Hsp90 complexes with either Hop, followed by addition of FKBP52, or with FKBP52 and subsequent addition of Hop, we monitor the formation of a predominant asymmetric ternary complex containing both cochaperones. This asymmetric complex is subsequently able to interact with the chaperone Hsp70 to form quaternary complexes containing all four proteins. Monitoring the population of these complexes during their formation and at equilibrium allows us to model the complex formation and to extract 14 different K(D) values. This simultaneous calculation of the K(D)s from a complex system with the same method, from eight deferent datasets under the same buffer conditions delivers a self-consistent set of values. In this case, the K(D) values afford insights into the assembly of ten Hsp90-containing complexes and provide a rationale for the cellular heterogeneity and prevalence of intermediates in the Hsp90 chaperone cycle.

摘要

Hsp90 循环依赖于一系列共伴侣蛋白的协调活动,包括 Hop、Hsp70 和肽基脯氨酰顺反异构酶(如 FKBP52)。我们使用质谱法研究了这些共伴侣蛋白的添加顺序及其对形成的含 Hsp90 复合物的化学计量和组成的影响。研究结果表明,单体 Hop 特异性结合 Hsp90 二聚体,而 FKBP52 结合单体和二聚体形式的 Hsp90。通过预先形成与 Hop 形成的 Hsp90 复合物,然后添加 FKBP52,或与 FKBP52 形成 Hsp90 复合物,然后添加 Hop,我们监测了主要的不对称三元复合物的形成,该复合物包含两种共伴侣蛋白。随后,这种不对称复合物能够与伴侣蛋白 Hsp70 相互作用,形成包含所有四种蛋白质的四元复合物。在形成过程中和达到平衡时监测这些复合物的群体,使我们能够对复合物形成进行建模并提取 14 个不同的 K(D) 值。这种从相同缓冲条件下的八个不同数据集的复杂系统中使用相同方法同时计算 K(D) 值,提供了一套一致的数值。在这种情况下,K(D) 值深入了解了十个含 Hsp90 复合物的组装,并为 Hsp90 伴侣周期中的细胞异质性和中间体的普遍性提供了依据。