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Probing Molecular Mechanisms of the Hsp90 Chaperone: Biophysical Modeling Identifies Key Regulators of Functional Dynamics

机译:探索Hsp90分子伴侣的分子机制:生物物理模型确定功能动力学的关键监管机构。

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摘要

Deciphering functional mechanisms of the Hsp90 chaperone machinery is an important objective in cancer biology aiming to facilitate discovery of targeted anti-cancer therapies. Despite significant advances in understanding structure and function of molecular chaperones, organizing molecular principles that control the relationship between conformational diversity and functional mechanisms of the Hsp90 activity lack a sufficient quantitative characterization. We combined molecular dynamics simulations, principal component analysis, the energy landscape model and structure-functional analysis of Hsp90 regulatory interactions to systematically investigate functional dynamics of the molecular chaperone. This approach has identified a network of conserved regions common to the Hsp90 chaperones that could play a universal role in coordinating functional dynamics, principal collective motions and allosteric signaling of Hsp90. We have found that these functional motifs may be utilized by the molecular chaperone machinery to act collectively as central regulators of Hsp90 dynamics and activity, including the inter-domain communications, control of ATP hydrolysis, and protein client binding. These findings have provided support to a long-standing assertion that allosteric regulation and catalysis may have emerged via common evolutionary routes. The interaction networks regulating functional motions of Hsp90 may be determined by the inherent structural architecture of the molecular chaperone. At the same time, the thermodynamics-based “conformational selection” of functional states is likely to be activated based on the nature of the binding partner. This mechanistic model of Hsp90 dynamics and function is consistent with the notion that allosteric networks orchestrating cooperative protein motions can be formed by evolutionary conserved and sparsely connected residue clusters. Hence, allosteric signaling through a small network of distantly connected residue clusters may be a rather general functional requirement encoded across molecular chaperones. The obtained insights may be useful in guiding discovery of allosteric Hsp90 inhibitors targeting protein interfaces with co-chaperones and protein binding clients.
机译:破解Hsp90分子伴侣机制的功能机制是癌症生物学中的一个重要目标,旨在促进靶向抗癌疗法的发现。尽管在了解分子伴侣的结构和功能方面取得了重大进展,但组织控制分子构象多样性与Hsp90活性功能机制之间关系的分子原理仍缺乏足够的定量表征。我们结合分子动力学模拟,主成分分析,能源格局模型和Hsp90调节相互作用的结构功能分析,以系统地研究分子伴侣的功能动力学。这种方法已经确定了Hsp90伴侣共有的保守区域网络,可以在协调Hsp90的功能动力学,主要集体运动和变构信号方面发挥普遍作用。我们已经发现,分子伴侣机制可以利用这些功能性基序共同充当Hsp90动力学和活性的中央调节剂,包括域间通讯,ATP水解控制和蛋白质客户结合。这些发现为长期主张变构调节和催化可能通过共同的进化途径出现提供了支持。调节Hsp90功能运动的相互作用网络可以由分子伴侣的固有结构决定。同时,基于结合伴侣的性质,功能状态的基于热力学的“构象选择”可能被激活。这种Hsp90动力学和功能的机理模型与以下构想是一致的,即构想协作蛋白运动的变构网络可以通过进化保守和稀疏连接的残基簇形成。因此,通过远距离连接的残基簇的小型网络的变构信号可能是跨分子伴侣编码的相当一般的功能要求。获得的见解可能对指导发现靶向蛋白与伴侣蛋白和蛋白质结合客户的蛋白质界面的变构Hsp90抑制剂有用。

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