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结核分枝杆菌 Baeyer-Villiger 单加氧酶的生物信息挖掘和结构-活性分析。

Bioinformatic Mining and Structure-Activity Profiling of Baeyer-Villiger Monooxygenases from Mycobacterium tuberculosis.

机构信息

Institut de Pharmacologie et de Biologie Structurale, IPBS, Université de Toulouse, CNRS, UPS, Toulouse, France.

MaIAGE, INRAE, AgroParisTech, Université Paris-Saclay, Jouy-en-Josas, France.

出版信息

mSphere. 2022 Apr 27;7(2):e0048221. doi: 10.1128/msphere.00482-21. Epub 2022 Mar 17.

Abstract

Mycobacterium tuberculosis is the etiological agent of tuberculosis (TB), one of the deadliest infectious diseases. The alarming health context coupled with the emergence of resistant M. tuberculosis strains highlights the urgent need to expand the range of anti-TB antibiotics. A subset of anti-TB drugs in use are prodrugs that require bioactivation by a class of M. tuberculosis enzymes called Baeyer-Villiger monooxygenases (BVMOs), which remain understudied. To examine the prevalence and the molecular function of BVMOs in mycobacteria, we applied a comprehensive bioinformatic analysis that identified six BVMOs in M. tuberculosis, including Rv3083 (MymA), Rv3854c (EthA), Rv0565c, and Rv0892, which were selected for further characterization. Homology modeling and substrate docking analysis, performed on this subset, suggested that Rv0892 is closer to the cyclohexanone BVMO, while Rv0565c and EthA are structurally and functionally similar to MymA, which is by far the most prominent type I BVMO enzyme. Thanks to an unprecedented purification and assay optimization, biochemical studies confirmed that all four BVMOs display BV-oxygenation activity. We also showed that MymA displays a distinctive substrate preference that we further investigated by kinetic parameter determination and that correlates with modeling. We provide insights into distribution of BVMOs and the structural basis of their substrate profiling, and we discuss their possible redundancy in M. tuberculosis, raising questions about their versatility in prodrug activation and their role in physiology and infection. Tuberculosis (TB), caused by Mycobacterium tuberculosis, is one of the leading causes of death worldwide. The rise in drug resistance highlights the urgent need for innovation in anti-TB drug development. Many anti-TB drugs require bioactivation by Baeyer-Villiger monooxygenases (BVMOs). Despite their emerging importance, BVMO structural and functional features remain enigmatic. We applied a comprehensive bioinformatic analysis and confirmed the presence of six BVMOs in M. tuberculosis, including MymA, EthA, and Rv0565c-activators of the second-line prodrug ethionamide-and the novel BVMO Rv0892. Combining characterization with validation, we outlined their structural framework and substrate preference. Markedly, MymA displayed an enhanced capacity and a distinct selectivity profile toward ligands, in agreement with its catalytic site topology. These features ground the molecular basis for structure-function comprehension of the specificity in these enzymes and expand the repertoire of BVMOs with selective and/or overlapping activity for application in the context of improving anti-TB therapy.

摘要

结核分枝杆菌是结核病(TB)的病原体,是最致命的传染病之一。令人震惊的健康状况,加上耐多药结核分枝杆菌菌株的出现,突显了扩大抗结核抗生素范围的迫切需要。目前使用的一组抗结核药物是前药,需要一类称为拜尔-维利格单加氧酶(BVMOs)的结核分枝杆菌酶进行生物激活,但这些酶仍未得到充分研究。为了研究结核分枝杆菌中 BVMOs 的流行情况和分子功能,我们应用了一种全面的生物信息学分析方法,该方法在结核分枝杆菌中鉴定了 6 种 BVMOs,包括 Rv3083(MymA)、Rv3854c(EthA)、Rv0565c 和 Rv0892,它们被进一步选择进行特征描述。对这一组的同源建模和底物对接分析表明,Rv0892 更接近环己酮 BVMO,而 Rv0565c 和 EthA 在结构和功能上与迄今为止最突出的 I 型 BVMO 酶 MymA 相似。由于进行了前所未有的纯化和测定优化,生化研究证实了所有四种 BVMO 都具有 BV-加氧酶活性。我们还表明,MymA 表现出独特的底物偏好性,我们通过动力学参数测定进一步研究了这种偏好性,并与建模相关。我们提供了对 BVMO 分布和底物分析结构基础的见解,并讨论了它们在结核分枝杆菌中的可能冗余性,这引发了关于它们在前药激活中的多功能性及其在生理和感染中的作用的问题。

结核病(TB)由结核分枝杆菌引起,是全球主要死亡原因之一。耐药性的上升凸显了创新抗结核药物开发的迫切需要。许多抗结核药物需要拜尔-维利格单加氧酶(BVMOs)的生物激活。尽管它们的重要性日益增加,但 BVMO 的结构和功能特征仍然很神秘。我们应用了一种全面的生物信息学分析方法,并在结核分枝杆菌中确认了六种 BVMOs 的存在,包括 MymA、EthA 和 Rv0565c,它们是二线前药乙硫异烟胺的激活剂,以及新型的 BVMO Rv0892。通过表征与验证相结合,我们概述了它们的结构框架和底物偏好性。值得注意的是,MymA 对配体的结合能力和选择性图谱表现出增强的能力,这与它的催化位点拓扑结构一致。这些特征为理解这些酶的特异性的结构-功能关系奠定了基础,并扩展了具有选择性和/或重叠活性的 BVMO 谱,以应用于改善抗结核治疗的背景下。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2e56/9044951/0651e513b88e/msphere.00482-21-f001.jpg

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