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ATPase Subdomain IA Is a Mediator of Interdomain Allostery in Hsp70 Molecular Chaperones

机译:ATPase亚域IA是Hsp70分子伴侣中域间变构的介体。

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摘要

The versatile functions of the heat shock protein 70 (Hsp70) family of molecular chaperones rely on allosteric interactions between their nucleotide-binding and substrate-binding domains, NBD and SBD. Understanding the mechanism of interdomain allostery is essential to rational design of Hsp70 modulators. Yet, despite significant progress in recent years, how the two Hsp70 domains regulate each other's activity remains elusive. Covariance data from experiments and computations emerged in recent years as valuable sources of information towards gaining insights into the molecular events that mediate allostery. In the present study, conservation and covariance properties derived from both sequence and structural dynamics data are integrated with results from Perturbation Response Scanning and in vivo functional assays, so as to establish the dynamical basis of interdomain signal transduction in Hsp70s. Our study highlights the critical roles of SBD residues D481 and T417 in mediating the coupled motions of the two domains, as well as that of G506 in enabling the movements of the α-helical lid with respect to the β-sandwich. It also draws attention to the distinctive role of the NBD subdomains: Subdomain IA acts as a key mediator of signal transduction between the ATP- and substrate-binding sites, this function being achieved by a cascade of interactions predominantly involving conserved residues such as V139, D148, R167 and K155. Subdomain IIA, on the other hand, is distinguished by strong coevolutionary signals (with the SBD) exhibited by a series of residues (D211, E217, L219, T383) implicated in DnaJ recognition. The occurrence of coevolving residues at the DnaJ recognition region parallels the behavior recently observed at the nucleotide-exchange-factor recognition region of subdomain IIB. These findings suggest that Hsp70 tends to adapt to co-chaperone recognition and activity via coevolving residues, whereas interdomain allostery, critical to chaperoning, is robustly enabled by conserved interactions.
机译:分子伴侣的热激蛋白70(Hsp70)家族的多功能功能依赖于其核苷酸结合结构域和底物结合结构域NBD和SBD之间的变构相互作用。了解域间别构的机制对于Hsp70调节剂的合理设计至关重要。然而,尽管近年来取得了重大进展,但两个Hsp70结构域如何调节彼此的活性仍不清楚。近年来,来自实验和计算的协方差数据逐渐成为有价值的信息来源,可用于深入了解介导变构的分子事件。在本研究中,将源自序列和结构动力学数据的保守性和协方差性质与摄动响应扫描和体内功能测定的结果相结合,从而为Hsp70s进行域间信号转导的动力学基础。我们的研究强调了SBD残基D481和T417在介导两个结构域的耦合运动中的关键作用,以及G506在使α螺旋盖相对于β三明治运动中的关键作用。它还引起人们对NBD子域的独特作用的注意:子域IA充当ATP和底物结合位点之间信号转导的关键介体,该功能通过主要涉及保守残基(例如V139, D148,R167和K155。另一方面,亚结构域IIA的特征是强共进化信号(具有SBD),该信号由与DnaJ识别有关的一系列残基(D211,E217,L219,T383)表现出来。在DnaJ识别区域共进化残基的出现与最近在亚结构域IIB的核苷酸交换因子识别区域观察到的行为相似。这些发现表明,Hsp70倾向于通过共同进化的残基来适应伴侣伴侣的识别和活性,而对伴侣伴侣至关重要的域间构象则通过保守的相互作用而得以稳健地实现。

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