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Lysine acetylation of DosR regulates the hypoxia response of Mycobacterium tuberculosis

机译:DosR的赖氨酸乙酰化调节结核分枝杆菌的低氧反应

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Tuberculosis caused by Mycobacterium tuberculosis ( Mtb ) infection remains a large global public health problem. One striking characteristic of Mtb is its ability to adapt to hypoxia and trigger the ensuing transition to a dormant state for persistent infection, but how the hypoxia response of Mtb is regulated remains largely unknown. Here we performed a quantitative acetylome analysis to compare the acetylation profile of Mtb under aeration and hypoxia, and showed that 377 acetylation sites in 269 Mtb proteins were significantly changed under hypoxia. In particular, deacetylation of dormancy survival regulator (DosR) at K182 promoted the hypoxia response in Mtb and enhanced the transcription of DosR-targeted genes. Mechanistically, recombinant DosRK182R protein demonstrated enhanced DNA-binding activity in comparison with DosRK182Q protein. Moreover, Rv0998 was identified as an acetyltransferase that mediates the acetylation of DosR at K182. Deletion of Rv0998 also promoted the adaptation of Mtb to hypoxia and the transcription of DosR-targeted genes. Mice infected with an Mtb strain containing acetylation-defective DosRK182R had much lower bacterial counts and less severe histopathological impairments compared with those infected with the wild-type strain. Our findings suggest that hypoxia induces the deacetylation of DosR, which in turn increases its DNA-binding ability to promote the transcription of target genes, allowing Mtb to shift to dormancy under hypoxia.
机译:由结核分枝杆菌(Mtb)感染引起的结核病仍然是一个全球性的大公共卫生问题。 Mtb的一个显着特征是其适应缺氧并触发随后转变为休眠状态以持续感染的能力,但是如何调节Mtb的缺氧反应仍然未知。在这里,我们进行了定量乙酰组分析,以比较通气和缺氧条件下Mtb的乙酰化曲线,并显示269 Mtb蛋白在缺氧条件下的377个乙酰化位点发生了显着变化。尤其是,休眠生存调节因子(DosR)在K182处的脱乙酰作用促进了Mtb中的缺氧反应并增强了DosR靶向基因的转录。从机理上讲,与DosR K182Q 蛋白相比,重组DosR K182R 蛋白具有增强的DNA结合活性。此外,Rv0998被鉴定为介导DosR在K182处乙酰化的乙酰转移酶。 Rv0998的删除还促进了Mtb对缺氧的适应和DosR靶向基因的转录。与感染了野生型毒株的小鼠相比,感染了含有乙酰化缺陷型DosR K182R 的Mtb毒株的小鼠细菌计数低得多,组织病理学损伤程度也较小。我们的发现表明,低氧诱导DosR脱乙酰化,进而增强其DNA结合能力,从而促进靶基因的转录,从而使Mtb在低氧条件下转变为休眠状态。

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