Inhibition of Mycobacterium-RmlA by Molecular Modeling, Dynamics Simulation, and Docking

Q1 Biochemistry, Genetics and Molecular Biology Advances in Bioinformatics Pub Date : 2016-02-14 DOI:10.1155/2016/9841250
N. Harathi, Madhusudana Pulaganti, C. M. Anuradha, S. K. Chitta
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引用次数: 6

Abstract

The increasing resistance to anti-tb drugs has enforced strategies for finding new drug targets against Mycobacterium tuberculosis (Mtb). In recent years enzymes associated with the rhamnose pathway in Mtb have attracted attention as drug targets. The present work is on α-D-glucose-1-phosphate thymidylyltransferase (RmlA), the first enzyme involved in the biosynthesis of L-rhamnose, of Mtb cell wall. This study aims to derive a 3D structure of RmlA by using a comparative modeling approach. Structural refinement and energy minimization of the built model have been done with molecular dynamics. The reliability assessment of the built model was carried out with various protein checking tools such as Procheck, Whatif, ProsA, Errat, and Verify 3D. The obtained model investigates the relation between the structure and function. Molecular docking interactions of Mtb-RmlA with modified EMB (ethambutol) ligands and natural substrate have revealed specific key residues Arg13, Lys23, Asn109, and Thr223 which play an important role in ligand binding and selection. Compared to all EMB ligands, EMB-1 has shown better interaction with Mtb-RmlA model. The information thus discussed above will be useful for the rational design of safe and effective inhibitors specific to RmlA enzyme pertaining to the treatment of tuberculosis.
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分枝杆菌- rmla的分子模拟、动力学模拟和对接抑制作用
随着抗结核药物耐药性的增加,寻找新的抗结核分枝杆菌(Mtb)药物靶点的战略势在必行。近年来,与鼠李糖途径相关的酶作为结核分枝杆菌的药物靶点引起了人们的关注。α- d -葡萄糖-1-磷酸胸苷基转移酶(RmlA)是结核分枝杆菌细胞壁上第一个参与l -鼠李糖生物合成的酶。本研究旨在通过比较建模方法推导出RmlA的三维结构。用分子动力学方法对所建模型进行了结构优化和能量最小化。利用Procheck、Whatif、ProsA、Errat和Verify 3D等多种蛋白质检测工具对构建的模型进行可靠性评估。所得模型考察了结构与功能之间的关系。mmb - rmla与修饰的EMB(乙胺丁醇)配体和天然底物的分子对接作用揭示了在配体结合和选择中起重要作用的特定关键残基Arg13、Lys23、Asn109和Thr223。与所有EMB配体相比,EMB-1与Mtb-RmlA模型表现出更好的相互作用。以上讨论的信息将有助于合理设计安全有效的RmlA酶特异性抑制剂,用于治疗结核病。
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Advances in Bioinformatics
Advances in Bioinformatics Biochemistry, Genetics and Molecular Biology-Biochemistry, Genetics and Molecular Biology (miscellaneous)
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