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底物序列决定 Pin1 的催化活性、结构域结合偏好和变构机制。

Substrate Sequence Determines Catalytic Activities, Domain-Binding Preferences, and Allosteric Mechanisms in Pin1.

出版信息

J Phys Chem B. 2018 Jun 28;122(25):6521-6527. doi: 10.1021/acs.jpcb.8b03819. Epub 2018 Jun 13.

Abstract

Pin1 is a unique phosphorylation-dependent peptidyl-prolyl isomerase that regulates diverse subcellular processes and an important potential therapeutic target. Functional mechanisms of Pin1 are complicated because of the two-domain structural organization: the catalytic domain both binds the specific pSer/Thr-Pro motif and catalyzes the cis/trans isomerization, whereas the WW domain can only bind the trans configuration and is speculated to be responsible for substrate-binding specificity. Numerous studies of Pin1 have led to two divergent conclusions on the functional role of the WW domain. One opinion states that the WW domain is an allosteric effector, and substrate binding to this domain modulates the binding and catalysis in the distal catalytic domain. The other opinion, however, argues that the WW domain does not have any allosteric role. Here, using molecular dynamics and binding free-energy calculations, we examine catalysis and allosteric mechanisms in Pin1 under various substrate- and WW-binding conditions. Our results reveal a strong substrate sequence dependency of catalysis, domain-binding preferences, and allosteric outputs in Pin1. Importantly, we show that the different opinions about the WW domain can be unified in one framework, in which substrate sequences determine whether a positive, negative, or neural allosteric effect will be elicited. Our work further elucidates detailed mechanisms underlying the sequence-dependent allostery of Pin1 and finds that interdomain contacts are key mediators of intraprotein allosteric communications. Our findings collectively provide new insights into the function of Pin1, which may facilitate the development of novel therapeutic drugs targeting Pin1 in the future.

摘要

Pin1 是一种独特的磷酸化依赖性肽脯氨酰顺反异构酶,调节多种细胞内过程,是一个重要的潜在治疗靶点。Pin1 的功能机制很复杂,这是由于其具有两域结构组织:催化结构域既能结合特定的 pSer/Thr-Pro 基序,又能催化顺式/反式异构化,而 WW 结构域只能结合反式构型,据推测其负责底物结合的特异性。大量关于 Pin1 的研究导致了关于 WW 结构域功能作用的两种截然不同的结论。一种观点认为,WW 结构域是一种别构效应物,底物与该结构域的结合调节了远端催化结构域的结合和催化作用。然而,另一种观点认为,WW 结构域没有任何别构作用。在这里,我们使用分子动力学和结合自由能计算,研究了在各种底物和 WW 结合条件下 Pin1 的催化和别构机制。我们的结果揭示了 Pin1 中催化、结构域结合偏好和别构输出具有很强的底物序列依赖性。重要的是,我们表明,关于 WW 结构域的不同观点可以在一个框架内统一起来,在这个框架中,底物序列决定了是否会产生正、负或中性的别构效应。我们的工作进一步阐明了 Pin1 序列依赖性别构的详细机制,并发现结构域间的接触是蛋白质内别构通讯的关键介质。我们的研究结果为 Pin1 的功能提供了新的见解,这可能有助于未来开发针对 Pin1 的新型治疗药物。

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