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Differential Modulation of Functional Dynamics and Allosteric Interactions in the Hsp90-Cochaperone Complexes with p23 and Aha1: A Computational Study

机译:Hsp90 Cochaperone配合物与p23和Aha1的功能动力学和变构相互作用的微分调制:计算研究。

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摘要

Allosteric interactions of the molecular chaperone Hsp90 with a large cohort of cochaperones and client proteins allow for molecular communication and event coupling in signal transduction networks. The integration of cochaperones into the Hsp90 system is driven by the regulatory mechanisms that modulate the progression of the ATPase cycle and control the recruitment of the Hsp90 clientele. In this work, we report the results of computational modeling of allosteric regulation in the Hsp90 complexes with the cochaperones p23 and Aha1. By integrating protein docking, biophysical simulations, modeling of allosteric communications, protein structure network analysis and the energy landscape theory we have investigated dynamics and stability of the Hsp90-p23 and Hsp90-Aha1 interactions in direct comparison with the extensive body of structural and functional experiments. The results have revealed that functional dynamics and allosteric interactions of Hsp90 can be selectively modulated by these cochaperones via specific targeting of the regulatory hinge regions that could restrict collective motions and stabilize specific chaperone conformations. The protein structure network parameters have quantified the effects of cochaperones on conformational stability of the Hsp90 complexes and identified dynamically stable communities of residues that can contribute to the strengthening of allosteric interactions. According to our results, p23-mediated changes in the Hsp90 interactions may provide “molecular brakes” that could slow down an efficient transmission of the inter-domain allosteric signals, consistent with the functional role of p23 in partially inhibiting the ATPase cycle. Unlike p23, Aha1-mediated acceleration of the Hsp90-ATPase cycle may be achieved via modulation of the equilibrium motions that facilitate allosteric changes favoring a closed dimerized form of Hsp90. The results of our study have shown that Aha1 and p23 can modulate the Hsp90-ATPase activity and direct the chaperone cycle by exerting the precise control over structural stability, global movements and allosteric communications in Hsp90.
机译:分子伴侣Hsp90与大量伴侣蛋白和客户蛋白的变构相互作用可实现信号转导网络中的分子通讯和事件偶联。伴侣蛋白到Hsp90系统的整合是由调节机制驱动的,该调节机制调节ATP酶循环的进程并控制Hsp90客户的募集。在这项工作中,我们报告与伴侣蛋白p23和Aha1的Hsp90复合物中的变构调节计算模型的结果。通过整合蛋白质对接,生物物理模拟,变构通讯建模,蛋白质结构网络分析和能量景观理论,我们与大量结构和功能实验直接进行了比较,研究了Hsp90-p23和Hsp90-Aha1相互作用的动力学和稳定性。 。结果表明,Hsp90的功能动力学和变构相互作用可以由这些伴侣蛋白通过调节铰链区域的特异性靶向而选择性调节,这可能会限制集体运动并稳定特定的伴侣蛋白构象。蛋白质结构网络参数已量化了伴侣蛋白对Hsp90复合物构象稳定性的影响,并鉴定了动态稳定的残基群落,可促进变构相互作用。根据我们的结果,p23介导的Hsp90相互作用的变化可能会提供“分子刹车”,从而减慢域间变构信号的有效传递,这与p23在部分抑制ATPase循环中的功能作用一致。与p23不同,可以通过调节平衡运动来促进Aha1介导的Hsp90-ATPase循环加速,该平衡运动有利于变构变化,有利于Hsp90的封闭二聚形式。我们的研究结果表明,Aha1和p23可以通过对Hsp90中的结构稳定性,整体运动和变构通讯进行精确控制,从而调节Hsp90-ATPase活性并指导分子伴侣循环。

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