生物
结核分枝杆菌
肺结核
微生物学
生物信息学
通量平衡分析
代谢网络
休眠
焊剂(冶金)
细胞生物学
代谢组学
病菌
基因
遗传学
生物化学
生物信息学
发芽
医学
病理
冶金
材料科学
植物
作者
Lanbo Shi,Charles D. Sohaskey,Carmen Pfeiffer,Pratik Datta,Michael Parks,Johnjoe McFadden,R J North,Maria Laura Gennaro
标识
DOI:10.1111/j.1365-2958.2010.07399.x
摘要
A hallmark of the Mycobacterium tuberculosis life cycle is the pathogen's ability to switch between replicative and non-replicative states in response to host immunity. Transcriptional profiling by qPCR of ∼ 50 M. tuberculosis genes involved in central and lipid metabolism revealed a re-routing of carbon flow associated with bacterial growth arrest during mouse lung infection. Carbon rerouting was marked by a switch from metabolic pathways generating energy and biosynthetic precursors in growing bacilli to pathways for storage compound synthesis during growth arrest. Results of flux balance analysis using an in silico metabolic network were consistent with the transcript abundance data obtained in vivo. Similar transcriptional changes were seen in vitro when M. tuberculosis cultures were treated with bacteriostatic stressors under different nutritional conditions. Thus, altered expression of key metabolic genes reflects growth rate changes rather than changes in substrate availability. A model describing carbon flux rerouting was formulated that (i) provides a coherent interpretation of the adaptation of M. tuberculosis metabolism to immunity-induced stress and (ii) identifies features common to mycobacterial dormancy and stress responses of other organisms.
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