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采用层次模拟方法和变构相互作用的网络建模解析 HSP90 伴侣调节的分子原理及其变构调节剂:构象选择决定蛋白反应的多样性和配体特异性功能机制。

Dissecting Molecular Principles of the Hsp90 Chaperone Regulation by Allosteric Modulators Using a Hierarchical Simulation Approach and Network Modeling of Allosteric Interactions: Conformational Selection Dictates the Diversity of Protein Responses and Ligand-Specific Functional Mechanisms.

机构信息

Graduate Program in Computational and Data Sciences, Keck Center for Science and Engineering, Schmid College of Science and Technology, Chapman University, One University Drive, Orange, California 92866, United States.

Department of Biomedical and Pharmaceutical Sciences, Chapman University School of Pharmacy, Irvine, California 92618, United States.

出版信息

J Chem Theory Comput. 2020 Oct 13;16(10):6656-6677. doi: 10.1021/acs.jctc.0c00503. Epub 2020 Sep 28.

Abstract

Conformational plasticity of the Hsp90 molecular chaperones underlies the diversity of functional mechanisms that these versatile molecular machines employ to coordinate their vast protein clientele in the cellular environment. Despite a steady progress in studies of the Hsp90 machinery, a great deal remains unknown about molecular principles and ligand-specific functional mechanisms of the Hsp90 regulation by allosteric modulators that attracted significant attention because of their therapeutic potential. Due to structural complexity and dynamic nature of the Hsp90 responses to allosteric modulators, the atomistic details about the mode of action of these small molecules continue to be fairly scarce and controversial. In this work, we employ an integrative strategy that encompassed atomistic simulations of the Hsp90 proteins and hierarchical modeling of Hsp90-ligand binding with network analysis to explore functional mechanisms of the Hsp90 regulation by a panel of allosteric modulators (novobiocin, KU-135, KU-174, and KU-32) with different models of action. The results show that functional mechanisms of allosteric modulation in the Hsp90 proteins may be driven by conformational selection principles in which ligands elicit pre-existing states of the unbound chaperone to drive ligand-specific protein responses and distinct scenarios of Hsp90 regulation. We found that novobiocin can selectively sequester an ensemble of open chaperone conformations and inhibit the progression of the functional cycle through a cascade of cumulative dynamic changes. In contrast, KU-32 displayed unique preferences toward partially closed dynamic states, inducing robust allosteric signaling and stimulation of the ATPase cycle. The proposed model of the Hsp90 regulation by allosteric modulators reconciled diverse experimental data and showed that allosteric modulators may operate via targeted exploitation of dynamic landscapes eliciting vastly different protein responses and diverse mechanisms of action.

摘要

热休克蛋白 90(Hsp90)分子伴侣的构象可塑性是这些多功能分子机器在细胞环境中协调其庞大的蛋白质客户群的各种功能机制的基础。尽管 Hsp90 机械的研究取得了稳步进展,但对于变构调节剂对 Hsp90 的调节的分子原理和配体特异性功能机制,仍有很多未知之处,这些调节剂因其治疗潜力而引起了广泛关注。由于 Hsp90 对变构调节剂的响应的结构复杂性和动态性质,这些小分子的作用模式的原子细节仍然相当稀缺和有争议。在这项工作中,我们采用了一种综合策略,该策略包括 Hsp90 蛋白的原子模拟和 Hsp90-配体结合的层次建模与网络分析,以探索一组具有不同作用模式的变构调节剂(新生霉素、KU-135、KU-174 和 KU-32)对 Hsp90 调节的功能机制。结果表明,变构调节的功能机制可能是由构象选择原理驱动的,其中配体引发未结合伴侣的预先存在状态,以驱动配体特异性的蛋白质反应和 Hsp90 调节的不同情况。我们发现,新生霉素可以选择性地隔离一组开放伴侣的构象,并通过一连串累积的动态变化来抑制功能循环的进展。相比之下,KU-32 对部分关闭的动态状态表现出独特的偏好,诱导强烈的变构信号和 ATP 酶循环的刺激。所提出的变构调节剂对 Hsp90 调节的模型调和了多样化的实验数据,并表明变构调节剂可能通过靶向利用动态景观来发挥作用,从而引发截然不同的蛋白质反应和不同的作用机制。

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