Phytochemical Molecules Binding with the Proteins of Mycolic Acid Synthesis Pathway of Mycobacterium tuberculosis

Rishabh Gaur, Praveen Anand
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Abstract

Resistance against anti-tubercular drugs is a significant problem. This elucidates the need for novel drug targets. Altering and targeting the enzymes involved in cell wall synthesis led to fatal damage to the bacterial cell. Mycolic acids are critically responsible for the virulence of Mycobacterium Tuberculosis. This pathway represents an essential reservoir of novel targets for developing new TB drugs. The study aims to identify phytochemicals with the capacity to bind with enzymes of mycolic acid synthesis pathways. This study shows the interaction between phytochemicals and proteins responsible for mycolic acid synthesis is shown through bioinformatics & molecular docking tools. Docking showed binding affinity between protein molecules of the mycolic acid synthesis pathway and ligand molecules in the study. PKS13 (polyketide synthase) interacts with the ligand beta-amyrin acetate with a vina score of -7.1 Kcal/mol. At the same time, its binding energy with Piperine is -6.8 Kcal/mol. DprE1 (Decaprenylphosphoryl-bet-D-ribose-2-epimerase), the other protein docked with beta-amyrin acetate, showed a vina score of -9.7 Kcal/mol binding energy. Piperine with DprE1 exhibits interaction with a score of -8.3 Kcal/mol. Beta-amyrin acetate is docked with a score of -6.9 Kcal/mol against KasA (Beta-ketoacyl-acyl carrier protein synthase). On the other hand, Piperine with KasA gave a result of -7.0 Kcal/mol. Piperine and Beta-amyrin acetate binds to PKS13, DprE1 & KasA protein/enzymes responsible for mycolic acid biosynthesis.
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植物化学分子与结核分枝杆菌霉菌酸合成途径蛋白的结合
抗结核药物的耐药性是一个重大问题。这说明需要新的药物靶点。改变和靶向参与细胞壁合成的酶会对细菌细胞造成致命的伤害。霉菌酸对结核分枝杆菌的毒力起关键作用。这一途径为开发新的结核病药物提供了一个重要的新靶点库。本研究旨在鉴定具有与霉菌酸合成途径酶结合能力的植物化学物质。本研究表明植物化学物质与霉菌酸合成蛋白之间的相互作用是通过生物信息学和分子对接工具显示的。对接显示了霉菌酸合成途径蛋白分子与配体分子之间的结合亲和力。PKS13(聚酮合成酶)与配体β -醋酸amyrin相互作用,vina评分为-7.1 Kcal/mol。同时,它与胡椒碱的结合能为-6.8 Kcal/mol。DprE1 (decaprenylphospyll - β - d - ribose2 -epimerase)是另一种与β -amyrin acetate对接的蛋白,其vina评分为-9.7 Kcal/mol结合能。胡椒碱与DprE1的相互作用分数为-8.3 Kcal/mol。β -醋酸amyrin与-6.9 Kcal/mol (β -酮酰基-酰基载体蛋白合成酶)对接。另一方面,胡椒碱加KasA的结果为-7.0 Kcal/mol。胡椒碱和β -氨基乙酸结合PKS13, DprE1和KasA蛋白/酶负责霉菌酸的生物合成。
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