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Mycobacterium tuberculosis Proteins Involved in Mycolic Acid Synthesis and Transport Localize Dynamically to the Old Growing Pole and Septum

机译:结核分枝杆菌蛋白质参与霉菌酸的合成和运输动态地定位到旧的增长极和隔膜。

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摘要

Understanding the mechanism that controls space-time coordination of elongation and division of Mycobacterium tuberculosis (Mtb), the causative agent of tuberculosis (TB), is critical for fighting the tubercle bacillus. Most of the numerous enzymes involved in the synthesis of Mycolic acid - Arabinogalactan-Peptidoglycan complex (MAPc) in the cell wall are essential in vivo. Using a dynamic approach, we localized Mtb enzymes belonging to the fatty acid synthase-II (FAS-II) complexes and involved in mycolic acid (MA) biosynthesis in a mycobacterial model of Mtb: M. smegmatis. Results also showed that the MA transporter MmpL3 was present in the mycobacterial envelope and was specifically and dynamically accumulated at the poles and septa during bacterial growth. This localization was due to its C-terminal domain. Moreover, the FAS-II enzymes were co-localized at the poles and septum with Wag31, the protein responsible for the polar localization of mycobacterial peptidoglycan biosynthesis. The dynamic localization of FAS-II and of the MA transporter with Wag31, at the old-growing poles and at the septum suggests that the main components of the mycomembrane may potentially be synthesized at these precise foci. This finding highlights a major difference between mycobacteria and other rod-shaped bacteria studied to date. Based on the already known polar activities of envelope biosynthesis in mycobacteria, we propose the existence of complex polar machinery devoted to the biogenesis of the entire envelope. As a result, the mycobacterial pole would represent the Achilles' heel of the bacillus at all its growing stages.
机译:理解控制结核分枝杆菌(TB)病原体结核分枝杆菌(Mtb)的时空协调延伸和分裂的机制,对于抵抗结核杆菌至关重要。细胞壁中参与霉菌酸-阿拉伯半乳聚糖-肽聚糖复合物(MAPc)合成的众多酶中的大多数是体内必需的。使用动态方法,我们定位了属于脂肪酸合酶-II(FAS-II)复合物的Mtb酶,并参与了Mtb:耻垢分枝杆菌的分枝杆菌模型中的霉菌酸(MA)生物合成。结果还表明,MA转运蛋白MmpL3存在于分枝杆菌的包膜中,并在细菌生长过程中特别动态地积聚在极点和隔垫处。该定位是由于其C端结构域。此外,FAS-II酶与Wag31共同定位在极点和隔膜处,Wag31是负责分枝杆菌肽聚糖生物合成的极性定位的蛋白质。 FAS-II和带有Wag31的MA转运蛋白在旧的两极和隔片上的动态定位表明,在这些精确的病灶处可能会合成肌膜的主要成分。这一发现凸显了分枝杆菌与迄今为止研究的其他杆状细菌之间的主要区别。基于分枝杆菌中包膜生物合成的已知极性活动,我们提出了存在于整个包膜生物发生的复杂极性机制。结果,分枝杆菌极代表了细菌在所有生长阶段的致命弱点。

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