首页> 外文期刊>Journal of Biomolecular Structure and Dynamics >Insight into the interactive residues between two domains of human somatic Angiotensin-converting enzyme and Angiotensin II by MM-PBSA calculation and steered molecular dynamics simulation
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Insight into the interactive residues between two domains of human somatic Angiotensin-converting enzyme and Angiotensin II by MM-PBSA calculation and steered molecular dynamics simulation

机译:通过MM-PBSA计算和操纵分子动力学模拟洞察人体血管紧张素转换酶和血管紧张素II的两个结构域之间的相互作用残基

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摘要

Angiotensin-converting enzyme (ACE), a membrane-bound zinc metallopeptidase, catalyzes the formation of Angiotensin-II (AngII) and the deactivation of bradykinin in the renin-angiotensin-aldosterone and kallikrein-kinin systems. As a hydrolysis product of ACE, AngII is regarded as an inhibitor and displays stronger competitive inhibition in the C-domain than the N-domain of ACE. However, the AngII binding differences between the two domains and the mechanisms behind AngII dissociation from the C-domain are rarely explored. In this work, molecular docking, Molecular Mechanics/Poisson-Boltzmann Surface Area calculation, and steered molecular dynamics (SMD) are applied to explore the structures and interactions in the binding or unbinding of AngII with the two domains of human somatic ACE. Calculated free energy values suggest that the C-domain-AngII complex is more stable than the N-domain-AngII complex, consistent with available experimental data. SMD simulation results imply that electrostatic interaction is dominant in the dissociation of AngII from the C-domain. Moreover, Gln106, Asp121, Glu123, and Tyr213 may be the key residues in the unbinding pathway of AngII. The simulation results in our work provide insights into the interactions between the two domains of ACE and its natural peptide inhibitor AngII at a molecular level. Moreover, the results provide theoretical clues for the design of new inhibitors.
机译:膜结合锌金属肽酶的血管紧张素转换酶(ACE)催化血管紧张素II(AngII)的形成以及在肾素-血管紧张素-醛固酮和激肽释放酶-激肽系统中缓激肽的失活。作为ACE的水解产物,AngII被认为是一种抑制剂,在ACE的C域中显示出比ACE的N域更强的竞争抑制作用。然而,很少探讨两个结构域之间的AngII结合差异和AngII从C结构域解离的机制。在这项工作中,应用分子对接,分子力学/泊松-玻尔兹曼表面积计算和分子导向动力学(SMD)来研究AngII与人体ACE的两个结构域结合或不结合的结构和相互作用。计算得出的自由能值表明,C域-AngII复合物比N域-AngII复合物更稳定,与现有的实验数据一致。 SMD模拟结果表明,静电相互作用在AngII与C域的解离中占主导地位。此外,Gln106,Asp121,Glu123和Tyr213可能是AngII解除结合途径中的关键残基。我们工作中的仿真结果提供了在分子水平上深入了解ACE的两个域与其天然肽抑制剂AngII之间相互作用的见解。此外,结果为新型抑制剂的设计提供了理论线索。

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