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Atomistic simulations and network-based modeling of the Hsp90-Cdc37 chaperone binding with Cdk4 client protein: A mechanism of chaperoning kinase clients by exploiting weak spots of intrinsically dynamic kinase domains

机译:Hsp90-Cdc37伴侣蛋白与Cdk4客户蛋白结合的原子模拟和基于网络的建模:通过利用内在动态激酶结构域的弱点来伴侣蛋白激酶客户的机制

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摘要

A fundamental role of the Hsp90 and Cdc37 chaperones in mediating conformational development and activation of diverse protein kinase clients is essential in signal transduction. There has been increasing evidence that the Hsp90-Cdc37 system executes its chaperoning duties by recognizing conformational instability of kinase clients and modulating their folding landscapes. The recent cryo-electron microscopy structure of the Hsp90-Cdc37-Cdk4 kinase complex has provided a framework for dissecting regulatory principles underlying differentiation and recruitment of protein kinase clients to the chaperone machinery. In this work, we have combined atomistic simulations with protein stability and network-based rigidity decomposition analyses to characterize dynamic factors underlying allosteric mechanism of the chaperone-kinase cycle and identify regulatory hotspots that control client recognition. Through comprehensive characterization of conformational dynamics and systematic identification of stabilization centers in the unbound and client- bound Hsp90 forms, we have simulated key stages of the allosteric mechanism, in which Hsp90 binding can induce instability and partial unfolding of Cdk4 client. Conformational landscapes of the Hsp90 and Cdk4 structures suggested that client binding can trigger coordinated dynamic changes and induce global rigidification of the Hsp90 inter-domain regions that is coupled with a concomitant increase in conformational flexibility of the kinase client. This process is allosteric in nature and can involve reciprocal dynamic exchanges that exert global effect on stability of the Hsp90 dimer, while promoting client instability. The network-based rigidity analysis and emulation of thermal unfolding of the Cdk4-cyclin D complex and Hsp90-Cdc37-Cdk4 complex revealed weak spots of kinase instability that are present in the native Cdk4 structure and are targeted by the chaperone during client recruitment. Our findings suggested that this mechanism may be exploited by the Hsp90-Cdc37 chaperone to recruit and protect intrinsically dynamic kinase clients from degradation. The results of this investigation are discussed and interpreted in the context of diverse experimental data, offering new insights into mechanisms of chaperone regulation and binding.
机译:Hsp90和Cdc37分子伴侣在介导构象发展和各种蛋白激酶客户激活中的基本作用在信号转导中至关重要。越来越多的证据表明,Hsp90-Cdc37系统通过识别激酶客户的构象不稳定性并调节其折叠态来执行其伴侣功能。 Hsp90-Cdc37-Cdk4激酶复合物的最新低温电子显微镜结构为解剖将蛋白激酶客户分化和募集到分子伴侣机制的调控原理提供了框架。在这项工作中,我们将原子模拟与蛋白质稳定性以及基于网络的刚性分解分析相结合,以表征分子伴侣激酶周期变构机制的动态因素,并确定控制客户识别的调节热点。通过对构象动力学的全面表征以及对未结合和与客户结合的Hsp90形式的稳定中心的系统鉴定,我们已经模拟了变构机制的关键阶段,其中Hsp90结合可诱导Cdk4客户的不稳定和部分展开。 Hsp90和Cdk4结构的构象景观表明,客户端绑定可以触发协调的动态变化,并导致Hsp90域间区域的整体刚性增强,并伴随激酶客户端构象灵活性的增加。此过程本质上是变构过程,并且可能涉及相互的动态交换,这些交换对Hsp90二聚体的稳定性产生全局影响,同时促进客户不稳定。基于网络的刚性分析和Cdk4-cyclin D复合物和Hsp90-Cdc37-Cdk4复合物的热展开模拟显示了天然Cdk4结构中存在的激酶不稳定弱点,并在招募客户时受到伴侣分子的攻击。我们的发现表明,Hsp90-Cdc37分子伴侣可以利用这种机制来募集并保护内在动态的激酶客户免于降解。这项研究的结果在各种实验数据的背景下进行了讨论和解释,为对分子伴侣调节和结合的机制提供了新的见解。

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