调节器
肽聚糖
细胞生物学
激活剂(遗传学)
化学
心理压抑
单元格信封
信号转导
抗药性
药品
生物
激酶
细胞
药物靶点
细胞周期
细胞分裂
封锁
脂多糖
级联
受体
药物治疗
酶
作者
Liam McDonough,Shuqi Li,Vanisha Munsamy-Govender,Celena M. Gwin,Jeremy M. Rock,E. Hesper Rego
标识
DOI:10.1073/pnas.2519608123
摘要
Unlike commonly studied rod-shaped bacteria, mycobacteria grow from their poles, requiring precise coordination between division and initiation of new pole growth. The mechanisms that mediate this transition are largely unknown, but likely represent a rich source of drug targets for the treatment of mycobacterial infections, including tuberculosis. Here, we identify TapA (MSMEG_3748/Rv1697) as a key regulator of this transition. TapA interacts with the sensor kinase MtrB at the septum to initiate a signaling cascade that ultimately results in the expression of the essential peptidoglycan hydrolases RipAB, among others, at the end of division. Loss of TapA disrupts division, dysregulates pole formation, and sensitizes Mycobacterium tuberculosis and other mycobacteria to several first and second-line TB antibiotics, establishing TapA as a potential therapeutic target, and defining a link between cell cycle progression, envelope remodeling, and intrinsic antibiotic resistance in mycobacteria.
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