Kinase Targets for Mycolic Acid Biosynthesis in Mycobacterium tuberculosis

英哈 激酶 磷酸化 结核分枝杆菌 生物 脱磷 丝氨酸苏氨酸激酶 磷酸酶 丝氨酸 生物化学 霉酸 蛋白质磷酸化 分枝杆菌 毒力 生物合成 微生物学 肺结核 蛋白激酶A 细菌 基因 遗传学 医学 病理
作者
Shahinda S. R. Alsayed,Chau Chun Beh,Neil R. Foster,Alan D. Payne,Yu Yu,Hendra Gunosewoyo
出处
期刊:Current Molecular Pharmacology [Bentham Science]
卷期号:12 (1): 27-49 被引量:20
标识
DOI:10.2174/1874467211666181025141114
摘要

Background: Mycolic acids (MAs) are the characteristic, integral building blocks for the mycomembrane belonging to the insidious bacterial pathogen Mycobacterium tuberculosis (M.tb). These C60-C90 long α-alkyl-β-hydroxylated fatty acids provide protection to the tubercle bacilli against the outside threats, thus allowing its survival, virulence and resistance to the current antibacterial agents. In the post-genomic era, progress has been made towards understanding the crucial enzymatic machineries involved in the biosynthesis of MAs in M.tb. However, gaps still remain in the exact role of the phosphorylation and dephosphorylation of regulatory mechanisms within these systems. To date, a total of 11 serine-threonine protein kinases (STPKs) are found in M.tb. Most enzymes implicated in the MAs synthesis were found to be phosphorylated in vitro and/or in vivo. For instance, phosphorylation of KasA, KasB, mtFabH, InhA, MabA, and FadD32 downregulated their enzymatic activity, while phosphorylation of VirS increased its enzymatic activity. These observations suggest that the kinases and phosphatases system could play a role in M.tb adaptive responses and survival mechanisms in the human host. As the mycobacterial STPKs do not share a high sequence homology to the human’s, there have been some early drug discovery efforts towards developing potent and selective inhibitors. Objective: Recent updates to the kinases and phosphatases involved in the regulation of MAs biosynthesis will be presented in this mini-review, including their known small molecule inhibitors. Conclusion: Mycobacterial kinases and phosphatases involved in the MAs regulation may serve as a useful avenue for antitubercular therapy.
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