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利用自适应策略分子动力学模拟和马尔可夫状态模型鉴定甲硫氨酸氨肽酶-II中的一个隐蔽口袋。

Identification of a Cryptic Pocket in Methionine Aminopeptidase-II Using Adaptive Bandit Molecular Dynamics Simulations and Markov State Models.

作者信息

Moin Syed Tarique, Haider Shozeb

机构信息

Third World Center for Science and Technology, H.E.J. Research Institute of Chemistry, International Center for Chemical and Biological Sciences, University of Karachi, Karachi 75270, Pakistan.

UCL School of Pharmacy, University College London, London WC1N 1AX, U.K.

出版信息

ACS Omega. 2024 Jun 18;9(26):28534-28545. doi: 10.1021/acsomega.4c02516. eCollection 2024 Jul 2.

Abstract

Methionine aminopeptidase-II (MetAP-II) is a metalloprotease, primarily responsible for the cotranslational removal of the N-terminal initiator methionine from the nascent polypeptide chain during protein synthesis. MetAP-II has been implicated in angiogenesis and endothelial cell proliferation and is therefore considered a validated target for cancer therapeutics. However, there is no effective drug available against MetAP-II. In this study, we employ Adaptive Bandit molecular dynamics simulations to investigate the structural dynamics of the apo and ligand-bound MetAP-II. Our results focus on the dynamic behavior of the disordered loop that is not resolved in most of the crystal structures. Further analysis of the conformational flexibility of the disordered loop reveals a hidden cryptic pocket that is predicted to be potentially druggable. The network analysis indicates that the disordered loop region has a direct signaling route to the active site. These findings highlight a new way to target MetAP-II by designing inhibitors for the allosteric site within this disordered loop region.

摘要

甲硫氨酸氨肽酶-II(MetAP-II)是一种金属蛋白酶,主要负责在蛋白质合成过程中从新生多肽链上共翻译去除N端起始甲硫氨酸。MetAP-II与血管生成和内皮细胞增殖有关,因此被认为是癌症治疗的一个已验证靶点。然而,目前尚无针对MetAP-II的有效药物。在本研究中,我们采用自适应强盗分子动力学模拟来研究无配体和配体结合的MetAP-II的结构动力学。我们的结果聚焦于大多数晶体结构中未解析的无序环的动态行为。对无序环构象灵活性的进一步分析揭示了一个预计可能可成药的隐藏隐秘口袋。网络分析表明,无序环区域有一条通向活性位点的直接信号通路。这些发现突出了一种通过设计针对该无序环区域内别构位点的抑制剂来靶向MetAP-II的新方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1777/11223136/db124f03082e/ao4c02516_0001.jpg

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