结核分枝杆菌M306L、M306V和D1024N突变诱导对乙胺丁醇耐药性的结构动力学见解。

Genomics & informatics Pub Date : 2023-09-01 Epub Date: 2023-09-27 DOI:10.5808/gi.23019
Yustinus Maladan, Dodi Safari, Arli Aditya Parikesit
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引用次数: 0

摘要

抗结核药物,特别是乙胺丁醇(EMB)的耐药性已在世界范围内广泛报道。EMB抗性是由编码阿拉伯糖基转移酶的embB基因突变引起的。本研究旨在检测巴布亚结核分枝杆菌embB基因的突变,并评估其对EMB有效性的影响。我们分析了20个经过全基因组测序的结核分枝杆菌培养物样本,其中19个样本的质量足以进行进一步的生物信息学分析。使用TBProfiler进行突变分析,其鉴定了M306L、M306V、D1024N和E378A突变。在样品TB035中,M306L突变与E378A一起存在。使用AutoDock-Vina计算EMB与阿拉伯糖基转移酶的结合亲和力。分子对接结果显示,与天然蛋白质(-0.948kcal/mol)相比,所有突变体都表现出对EMB的结合亲和力增加。当与E378A共存时,M306L突变的存在导致与单独的M306L突变体相比结合亲和力略有增加。分子动力学模拟结果表明,M306L、M306L+E378A、M306V和E378A突变体降低了蛋白质的稳定性。相反,D1024N突变体表现出与天然蛋白质相当的稳定性。总之,本研究表明,M306L、M306L+E378A、M306V和E378A突变可能有助于EMB抗性,而D1024N突变可能与EMB的持续易感性一致。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Structural dynamics insights into the M306L, M306V, and D1024N mutations in Mycobacterium tuberculosis inducing resistance to ethambutol.

Structural dynamics insights into the M306L, M306V, and D1024N mutations in Mycobacterium tuberculosis inducing resistance to ethambutol.

Structural dynamics insights into the M306L, M306V, and D1024N mutations in Mycobacterium tuberculosis inducing resistance to ethambutol.

Structural dynamics insights into the M306L, M306V, and D1024N mutations in Mycobacterium tuberculosis inducing resistance to ethambutol.

Resistance to anti-tuberculosis drugs, especially ethambutol (EMB), has been widely reported worldwide. EMB resistance is caused by mutations in the embB gene, which encodes the arabinosyl transferase enzyme. This study aimed to detect mutations in the embB gene of Mycobacterium tuberculosis from Papua and to evaluate their impact on the effectiveness of EMB. We analyzed 20 samples of M. tuberculosis culture that had undergone whole-genome sequencing, of which 19 samples were of sufficient quality for further bioinformatics analysis. Mutation analysis was performed using TBProfiler, which identified M306L, M306V, D1024N, and E378A mutations. In sample TB035, the M306L mutation was present along with E378A. The binding affinity of EMB to arabinosyl transferase was calculated using AutoDock Vina. The molecular docking results revealed that all mutants demonstrated an increased binding affinity to EMB compared to the native protein (-0.948 kcal/mol). The presence of the M306L mutation, when coexisting with E378A, resulted in a slight increase in binding affinity compared to the M306L mutation alone. The molecular dynamics simulation results indicated that the M306L, M306L + E378A, M306V, and E378A mutants decreased protein stability. Conversely, the D1024N mutant exhibited stability comparable to the native protein. In conclusion, this study suggests that the M306L, M306L + E378A, M306V, and E378A mutations may contribute to EMB resistance, while the D1024N mutation may be consistent with continued susceptibility to EMB.

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