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建立模型并进行模拟研究,以鉴定亮氨酸合成酶为利什曼原虫的潜在药物靶点。

Modeling and simulation study to identify threonine synthase as possible drug target in Leishmania major.

机构信息

Bioinformatics Centre, Savitribai Phule Pune University, Pune, Maharashtra, 411007, India.

Department of Biotechnology, Savitribai Phule Pune University, Pune, Maharashtra, 411007, India.

出版信息

Mol Divers. 2021 Aug;25(3):1679-1700. doi: 10.1007/s11030-020-10129-8. Epub 2020 Jul 31.

DOI:10.1007/s11030-020-10129-8
PMID:32737682
Abstract

Leishmaniasis is one of the most neglected tropical diseases that demand immediate attention to the identification of new drug targets and effective drug candidates. The present study demonstrates the possibility of using threonine synthase (TS) as a putative drug target in leishmaniasis disease management. We report the construction of an effective homology model of the enzyme that appears to be structurally as well as functionally well conserved. The 200 nanosecond molecular dynamics data on TS with and without pyridoxal phosphate (PLP) shed light on mechanistic details of PLP-induced conformational changes. Moreover, we address some important structural and dynamic interactions in the PLP binding region of TS that are in good agreement with previously speculated crystallographic estimations. Additionally, after screening more than 44,000 compounds, we propose 10 putative inhibitor candidates for TS based on virtual screening data and refined Molecular Mechanics Generalized Born Surface Area calculations. We expect that structural and functional dynamics data disclosed in this study will help initiate experimental endeavors toward establishing TS as an effective antileishmanial drug target.

摘要

利什曼病是最被忽视的热带病之一,需要立即关注新的药物靶点和有效的药物候选物的鉴定。本研究表明苏氨酸合酶 (TS) 作为利什曼病药物管理的潜在药物靶点是可行的。我们报告了该酶的有效同源模型的构建,该模型在结构和功能上似乎都得到了很好的保留。有和没有吡哆醛磷酸 (PLP) 的 TS 的 200 纳秒分子动力学数据阐明了 PLP 诱导构象变化的机制细节。此外,我们解决了 TS 的 PLP 结合区域中的一些重要的结构和动态相互作用,这些相互作用与先前推测的晶体学估计值非常吻合。此外,在筛选了超过 44000 种化合物后,我们根据虚拟筛选数据和经过改进的分子力学广义 Born 表面积计算,提出了 10 种潜在的 TS 抑制剂候选物。我们期望本研究中揭示的结构和功能动力学数据将有助于启动实验工作,将 TS 确立为一种有效的抗利什曼病药物靶点。

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