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基于结构的结核分枝杆菌胸苷一磷酸激酶选择性肽抑制剂的计算机辅助合理设计。

Structure-based in-silico rational design of a selective peptide inhibitor for thymidine monophosphate kinase of mycobacterium tuberculosis.

机构信息

Department of Biophysics, All India Institute of Medical Sciences, Ansari Nagar, New Delhi 110 029, India.

出版信息

J Mol Model. 2011 May;17(5):1173-82. doi: 10.1007/s00894-010-0821-6. Epub 2010 Aug 11.

Abstract

Tuberculosis still remains one of the most deadly infectious diseases. The emergence of drug resistant strains has fuelled the quest for novel drugs and drug targets for its successful treatment. Thymidine monophosphate kinase (TMPK) lies at the point where the salvage and de novo synthetic pathways meet in nucleotide synthesis. TMPK in M.tb has emerged as an attractive drug target since blocking it will affect both the pathways involved in the thymidine triphosphate synthesis. Moreover, the unique differences at the active site of TMPK enzyme in M.tb and humans can be exploited for the development of ideal drug candidates. Based on a detailed evaluation of known inhibitors and available three-dimensional structures of TMPK, several peptidic inhibitors were designed. In silico docking and selectivity analysis of these inhibitors with TMPK from M.tb and human was carried out to examine their differential binding at the active site. The designed tripeptide, Trp-Pro-Asp, was found to be most selective for M.tb. The ADMET analysis of this peptide indicated that it is likely to be a drug candidate. The tripeptide so designed is a suitable lead molecule for the development of novel TMPK inhibitors as anti-tubercular drugs.

摘要

结核病仍然是最致命的传染病之一。耐药菌株的出现推动了人们对新型药物和药物靶点的探索,以期成功治疗结核病。胸苷一磷酸激酶(TMPK)位于补救和从头合成途径在核苷酸合成中交汇的点。结核分枝杆菌中的 TMPK 已成为一个有吸引力的药物靶点,因为阻断它将影响参与胸苷三磷酸合成的两条途径。此外,结核分枝杆菌和人类 TMPK 酶的活性位点的独特差异可以被利用来开发理想的药物候选物。在对已知抑制剂和 TMPK 的可用三维结构进行详细评估的基础上,设计了几种肽类抑制剂。对来自结核分枝杆菌和人类的 TMPK 进行了这些抑制剂的计算机对接和选择性分析,以检查它们在活性位点的差异结合。设计的三肽,色氨酸-脯氨酸-天冬氨酸,被发现对结核分枝杆菌最具选择性。该肽的 ADMET 分析表明,它可能是一种药物候选物。因此,设计的三肽是开发新型 TMPK 抑制剂作为抗结核药物的合适先导分子。

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