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Toxin-Antitoxin Systems of Mycobacterium smegmatis Are Essential for Cell Survival

机译:耻垢分枝杆菌的毒素-抗毒素系统对于细胞存活至关重要

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摘要

The role of chromosomal toxin-antitoxin (TA) modules in bacterial physiology remains enigmatic despite their abundance in the genomes of many bacteria. Mycobacterium smegmatis contains three putative TA systems, VapBC, MazEF, and Phd/Doc, and previous work from our group has shown VapBC to be a bona fide TA system. In this study, we show that MazEF and Phd/Doc are also TA systems that are constitutively expressed, transcribed as leaderless transcripts, and subject to autoregulation, and expression of the toxin component leads to growth inhibition that can be rescued by the cognate antitoxin. No phenotype was identified for deletions of the individual TA systems, but a triple deletion strain (ΔvapBC, mazEF, phd/doc), designated ΔTAtriple, exhibited a survival defect in complex growth medium demonstrating an essential role for these TA modules in mycobacterial survival. Transcriptomic analysis revealed no significant differences in gene expression between wild type and the ΔTAtriple mutant under these conditions suggesting that the growth defect was not at a transcriptional level. Metabolomic analysis demonstrated that in response to starvation in complex medium, both the wild type and ΔTAtriple mutant consumed a wide range of amino acids from the external milieu. Analysis of intracellular metabolites revealed a significant difference in the levels of branched-chain amino acids between the wild type and ΔTAtriple mutant, which are proposed to play essential roles in monitoring the nutritional supply and physiological state of the cell and linking catabolic with anabolic reactions. Disruption of this balance in the ΔTAtriple mutant may explain the survival defect in complex growth medium.
机译:尽管染色体毒素-抗毒素(TA)模块在许多细菌的基因组中含量很高,但它们在细菌生理学中的作用仍然是个谜。耻垢分枝杆菌包含三个推定的TA系统,即VapBC,MazEF和Phd / Doc,我们小组先前的工作表明VapBC是真正的TA系统。在这项研究中,我们显示MazEF和Phd / Doc也是TA系统,其组成性表达,转录为无前导转录本,并经过自动调节,毒素成分的表达导致生长抑制,可以通过同源抗毒素来挽救。没有发现单个TA系统缺失的表型,但是命名为ΔTA triple 的三重缺失菌株(ΔvapBC,mazEF,phd / doc)在复杂的生长培养基中显示出生存缺陷,证明了其必不可少的作用。这些TA模块在分枝杆菌生存中的作用。转录组学分析表明在这些条件下野生型和ΔTA triple 突变体之间的基因表达没有显着差异,表明生长缺陷不在转录水平。代谢组学分析表明,响应于复杂培养基中的饥饿,野生型和ΔTA triple 突变体均从外部环境消耗了广泛的氨基酸。细胞内代谢产物的分析表明,野生型和ΔTA triple 突变体之间的支链氨基酸水平存在显着差异,这被认为在监测其营养供应和生理状态方面起着重要作用。细胞和分解代谢与合成代谢反应的联系。 ΔTA triple 突变体中这种平衡的破坏可能解释了复杂生长培养基中的存活缺陷。

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