TheMycobacterium tuberculosis serine/threonine kinase PknL phosphorylates Rv2175c: Mass spectrometric profiling of the activation loop phosphorylation sites and their role in the recruitment of Rv2175c

自磷酸化 磷酸化 苏氨酸 激酶 支原体 丝氨酸 磷酸化级联 丝氨酸苏氨酸激酶 蛋白质磷酸化 生物化学 脱磷 生物 地图14 底物水平磷酸化 蛋白激酶A 细胞生物学 细胞周期蛋白依赖激酶2 结核分枝杆菌 磷酸酶 病理 肺结核 医学
作者
Marc J. Canova,Romain Veyron‐Churlet,Isabelle Zanella-Cléon,Martin Cohen‐Gonsaud,Alain J. Cozzone,Michel Becchi,Laurent Kremer,Virginie Molle
出处
期刊:Proteomics [Wiley]
卷期号:8 (3): 521-533 被引量:57
标识
DOI:10.1002/pmic.200700442
摘要

Abstract Although Mycobacterium tuberculosis ( M. tb ) comprises 11 serine/threonine protein kinases, the mechanisms of regulation of these kinases and the nature of their endogenous substrates remain largely unknown. Herein, we characterized the M. tb kinase PknL by demonstrating that it expresses autophosphorylation activity and phosphorylates Rv2175c. On‐target dephosphorylation/MALDI‐TOF for identification of phosphorylated peptides was used in combination with LC‐ESI/MS/MS for localization of phosphorylation sites. By doing so, five phosphorylated threonine residues were identified in PknL. Among them, we showed that the activation loop phosphorylated residues Thr173 and Thr175 were essential for the autophosphorylation activity of PknL. Phosphorylation of the activation loop Thr173 residue is also required for optimal PknL‐mediated phosphorylation of Rv2175c. Together, our results indicate that phosphorylation of the PknL activation loop Thr residues not only controls PknL kinase activity but is also required for recruitment and phosphorylation of its substrate. Rv2175c was found to be phosphorylated when overexpressed and purified from Mycobacterium smegmatis as 2‐DE indicated the presence of different phosphorylated isoforms. Given the presence of the dcw gene cluster in the close vicinity of the pknL / Rv2175c locus, and its conservation in all mycobacterial species, we propose that PknL/Rv2175c may represent a functional pair in the regulation of mycobacterial cell division and cell envelope biosynthesis.
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