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解析真实胆固醇酯转移蛋白的结构动力学,发现潜在的先导化合物:理论研究。

Dissecting the Structural Dynamics of Authentic Cholesteryl Ester Transfer Protein for the Discovery of Potential Lead Compounds: A Theoretical Study.

机构信息

MOE Key Laboratory for Nonequilibrium Synthesis and Modulation of Condensed Matter, School of Physics, Xi'an Jiaotong University, Xi'an 710049, China.

出版信息

Int J Mol Sci. 2023 Jul 31;24(15):12252. doi: 10.3390/ijms241512252.

Abstract

Current structural and functional investigations of cholesteryl ester transfer protein (CETP) inhibitor design are nearly entirely based on a fully active mutation (CETP) constructed for protein crystallization, limiting the study of the dynamic structural features of authentic CETP involved in lipid transport under physiological conditions. In this study, we conducted comprehensive molecular dynamics (MD) simulations of both authentic CETP (CETP) and CETP. Considering the structural differences between the N- and C-terminal domains of CETP and CETP, and their crucial roles in lipid transfer, we identified the two domains as binding pockets of the ligands for virtual screening to discover potential lead compounds targeting CETP. Our results revealed that CETP displays greater flexibility and pronounced curvature compared to CETP. Employing virtual screening and MD simulation strategies, we found that ZINC000006242926 has a higher binding affinity for the N- and C-termini, leading to reduced N- and C-opening sizes, disruption of the continuous tunnel, and increased curvature of CETP. In conclusion, CETP facilitates the formation of a continuous tunnel in the "neck" region, while CETP does not exhibit such characteristics. The ligand ZINC000006242926 screened for binding to the N- and C-termini induces structural changes in the CETP unfavorable to lipid transport. This study sheds new light on the relationship between the structural and functional mechanisms of CETP. Furthermore, it provides novel ideas for the precise regulation of CETP functions.

摘要

目前,对胆固醇酯转移蛋白(CETP)抑制剂设计的结构和功能研究几乎完全基于为蛋白质结晶构建的完全活性突变体(CETP),限制了对涉及生理条件下脂质转运的真实 CETP 的动态结构特征的研究。在这项研究中,我们对真实的 CETP(CETP)和 CETP 进行了全面的分子动力学(MD)模拟。考虑到 CETP 的 N-和 C-末端结构域之间的结构差异及其在脂质转运中的关键作用,我们将这两个结构域确定为配体虚拟筛选的结合口袋,以发现潜在的针对 CETP 的先导化合物。我们的结果表明,CETP 比 CETP 具有更大的灵活性和更明显的曲率。我们通过虚拟筛选和 MD 模拟策略发现,ZINC000006242926 对 N-和 C-末端具有更高的结合亲和力,导致 N-和 C-开口尺寸减小,连续隧道中断,CETP 曲率增加。总之,CETP 有助于在“颈部”区域形成连续的隧道,而 CETP 则没有这种特征。与 N-和 C-末端结合的配体 ZINC000006242926 诱导 CETP 发生不利于脂质转运的结构变化。这项研究揭示了 CETP 的结构和功能机制之间的关系。此外,它为 CETP 功能的精确调节提供了新的思路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9a80/10418423/b03fdfcb690b/ijms-24-12252-g001.jpg

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