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Modeling Signal Propagation Mechanisms and Ligand-Based Conformational Dynamics of the Hsp90 Molecular Chaperone Full-Length Dimer

机译:Hsp90分子伴侣全长二聚体的信号传播机理建模和基于配体的构象动力学

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摘要

Hsp90 is a molecular chaperone essential for protein folding and activation in normal homeostasis and stress response. ATP binding and hydrolysis facilitate Hsp90 conformational changes required for client activation. Hsp90 plays an important role in disease states, particularly in cancer, where chaperoning of the mutated and overexpressed oncoproteins is important for function. Recent studies have illuminated mechanisms related to the chaperone function. However, an atomic resolution view of Hsp90 conformational dynamics, determined by the presence of different binding partners, is critical to define communication pathways between remote residues in different domains intimately affecting the chaperone cycle. Here, we present a computational analysis of signal propagation and long-range communication pathways in Hsp90. We carried out molecular dynamics simulations of the full-length Hsp90 dimer, combined with essential dynamics, correlation analysis, and a signal propagation model. All-atom MD simulations with timescales of 70 ns have been performed for complexes with the natural substrates ATP and ADP and for the unliganded dimer. We elucidate the mechanisms of signal propagation and determine “hot spots” involved in interdomain communication pathways from the nucleotide-binding site to the C-terminal domain interface. A comprehensive computational analysis of the Hsp90 communication pathways and dynamics at atomic resolution has revealed the role of the nucleotide in effecting conformational changes, elucidating the mechanisms of signal propagation. Functionally important residues and secondary structure elements emerge as effective mediators of communication between the nucleotide-binding site and the C-terminal interface. Furthermore, we show that specific interdomain signal propagation pathways may be activated as a function of the ligand. Our results support a “conformational selection model” of the Hsp90 mechanism, whereby the protein may exist in a dynamic equilibrium between different conformational states available on the energy landscape and binding of a specific partner can bias the equilibrium toward functionally relevant complexes.
机译:Hsp90是分子伴侣,对于正常的体内平衡和应激反应中的蛋白质折叠和激活至关重要。 ATP结合和水解促进了客户激活所需的Hsp90构象变化。 Hsp90在疾病状态中起着重要作用,特别是在癌症中,突变和过表达的癌蛋白的伴侣对功能至关重要。最近的研究阐明了与伴侣功能有关的机制。但是,由Hsp90构象动力学的原子分辨率视图(由不同的结合配偶体的存在决定),对于定义密切影响分子伴侣循环的不同域中远程残基之间的通信途径至关重要。在这里,我们介绍Hsp90中信号传播和远程通信路径的计算分析。我们进行了全长Hsp90二聚体的分子动力学模拟,并结合了基本动力学,相关分析和信号传播模型。已对具有天然底物ATP和ADP的复合物以及未配体的二聚体进行了时标为70 ns的全原子MD模拟。我们阐明了信号传播的机制,并确定了从核苷酸结合位点到C末端域界面的域间通信路径中涉及的“热点”。对Hsp90通讯途径和原子分辨率动力学的全面计算分析表明,核苷酸在影响构象变化中的作用,阐明了信号传播的机制。功能上重要的残基和二级结构元件作为核苷酸结合位点和C-末端界面之间的有效通信介体出现。此外,我们表明特定域间信号传播途径可能被激活作为配体的函数。我们的研究结果支持Hsp90机理的“构象选择模型”,即蛋白质可能以动态平衡的形式存在于能量图谱上的不同构象状态之间,并且特定配偶体的结合会使平衡偏向功能相关的复合物。

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