Screening and identification of potential inhibitor for visceral leishmaniasis (VL) through computational analysis.

IF 3.6 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
N Shaslinah, P Sangavi, R Sangeetha, S Gowthamkumar, V Sindhu, K Langeswaran
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引用次数: 1

Abstract

Aim: The aim of this investigation is to detect potential inhibitor for visceral leishmaniasis through computational analysis.

Background: Leishmaniasis is categorized as a vector born pathogenic infection prevalent in tropical, subtropical, and in Mediterranean zones spread by intra-macrophage protozoa. The clinical syndrome of leishmaniasis is divided into the following type's namely cutaneous leishmaniasis, mucocutaneous leishmaniasis, visceral leishmaniasis, and dermal leishmaniasis. Trypanothione synthetase is a key enzyme involving in glutathione biosynthesis as well as hydrolysis. Trypanothione is one of the promising drug targets for parasites. Parasites are inimitable with concern to their dependence on trypanothione to regulate intracellular thiol-redox balance in fighting against oxidative stress and biochemical anxiety. However, trypanothione synthetase was presumed as the target therapeutic alternate in VL therapy.

Objective: The important objective of this current investigation is to identify or analyze the potential inhibitor for V. leishmaniasis through computational approaches which include virtual screening, molecular docking, ADME prediction, and molecular dynamic simulation.

Methods: An investigation was performed to develop a 3D protein structure, using computational screening among associated similar structured proteins from popular compound database banks such as Specs, Maybridge, and Enamine, to detect novel staging with a series of validation for emerging innovative drugs molecules. Modeled protein ligand complex was further analyzed to know the binding ability of the complex. Molecular dynamics were performed to ascertain its stability at 50 ns.

Results: Trypanothione synthetase overall ability in the outcome of series of analysis. Among three database compounds screened, the compound from the Specs database exhibited the better protein-ligand docking scores and fulfilled the drug-like properties through ADMET analysis, and the docked complexes had better stability throughout the simulation. Besides, the other two database leads fulfilled the pharmacological properties, and the complexes were stable in the simulation.

Conclusion: By analyzing the various compounds from different databases, we concluded that the Specs database compound exhibits potential activity against the target protein and is considered a promising inhibitor for trypanothione synthetase.

Abstract Image

Abstract Image

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通过计算分析筛选和鉴定内脏利什曼病(VL)潜在抑制剂。
目的:通过计算分析寻找内脏利什曼病的潜在抑制剂。背景:利什曼病被归类为一种媒生致病性感染,流行于热带、亚热带和地中海地区,通过巨噬细胞内原虫传播。利什曼病的临床综合征分为皮肤利什曼病、皮肤粘膜利什曼病、内脏利什曼病和皮肤利什曼病。锥虫硫酮合成酶是参与谷胱甘肽生物合成和水解的关键酶。锥虫硫酮是一种很有前途的治疗寄生虫的药物靶点。寄生虫在对抗氧化应激和生化焦虑中依赖锥虫硫酮调节细胞内硫醇-氧化还原平衡,这是独一无二的。然而,锥虫硫酮合成酶被认为是VL治疗的目标治疗选择。目的:本研究的重要目的是通过虚拟筛选、分子对接、ADME预测和分子动力学模拟等计算方法,鉴定或分析潜在的利什曼弧菌抑制剂。方法:通过对Specs、Maybridge和Enamine等流行化合物数据库中相关相似结构蛋白的计算筛选,通过一系列新出现的创新药物分子验证来检测新阶段,研究开发3D蛋白质结构。进一步分析模型蛋白配体复合物,了解复合物的结合能力。用分子动力学方法确定其在50 ns下的稳定性。结果:锥虫硫酮合成酶综合能力系列结果分析。在筛选的3个数据库化合物中,Specs数据库中的化合物在ADMET分析中表现出较好的蛋白质-配体对接得分,满足类药物性质,并且在整个模拟过程中,对接的配合物具有较好的稳定性。此外,另外两个数据库先导物符合药理学性质,并且配合物在模拟中稳定。结论:通过分析来自不同数据库的化合物,我们得出Specs数据库化合物对目标蛋白具有潜在活性,被认为是一种有前景的锥虫硫酮合成酶抑制剂。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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