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凝血调节蛋白对凝血酶的变构调节:来自逻辑回归和分子动力学模拟统计分析的见解

Allosteric Modulation of Thrombin by Thrombomodulin: Insights from Logistic Regression and Statistical Analysis of Molecular Dynamics Simulations.

作者信息

Wu Dizhou, Salsbury Freddie R

机构信息

Department of Physics, Wake Forest University, Winston-Salem, North Carolina 27106, United States.

出版信息

ACS Omega. 2024 May 17;9(21):23086-23100. doi: 10.1021/acsomega.4c03375. eCollection 2024 May 28.

Abstract

Thrombomodulin (TM), a transmembrane receptor integral to the anticoagulant pathway, governs thrombin's substrate specificity via interaction with thrombin's anion-binding exosite I. Despite its established role, the precise mechanisms underlying this regulatory function are yet to be fully unraveled. In this study, we deepen the understanding of these mechanisms through eight independent 1 μs all-atom simulations, analyzing thrombin both in its free form and when bound to TM fragments TM456 and TM56. Our investigations revealed distinct and significant conformational changes in thrombin mediated by the binding of TM56 and TM456. While TM56 predominantly influences motions within exosite I, TM456 orchestrates coordinated alterations across various loop regions, thereby unveiling a multifaceted modulatory role that extends beyond that of TM56. A highlight of our study is the identification of critical hydrogen bonds that undergo transformations during TM56 and TM456 binding, shedding light on the pivotal allosteric influence exerted by TM4 on thrombin's structural dynamics. This work offers a nuanced appreciation of TM's regulatory role in blood coagulation, paving the way for innovative approaches in the development of anticoagulant therapies and expanding the horizons in oncology therapeutics through a deeper understanding of molecular interactions in the coagulation pathway.

摘要

血栓调节蛋白(TM)是抗凝途径不可或缺的跨膜受体,它通过与凝血酶的阴离子结合外位点I相互作用来控制凝血酶的底物特异性。尽管其作用已得到确立,但其调节功能背后的确切机制仍有待充分阐明。在本研究中,我们通过八个独立的1微秒全原子模拟加深了对这些机制的理解,分析了游离形式的凝血酶以及与TM片段TM456和TM56结合时的凝血酶。我们的研究揭示了TM56和TM456结合介导的凝血酶中明显且显著的构象变化。虽然TM56主要影响外位点I内的运动,但TM456协调了各个环区域的协同变化,从而揭示了一种超越TM56的多方面调节作用。我们研究的一个亮点是确定了在TM56和TM456结合过程中发生变化的关键氢键,揭示了TM4对凝血酶结构动力学施加的关键变构影响。这项工作为深入理解TM在血液凝固中的调节作用提供了细致入微的认识,为抗凝疗法开发中的创新方法铺平了道路,并通过更深入了解凝血途径中的分子相互作用,拓宽了肿瘤治疗学的视野。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f4c2/11137727/52d9d6192206/ao4c03375_0001.jpg

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