| Literature DB >> 28329249 |
Yu Sang1, Jie Ren1, Ran Qin2, Shuting Liu1, Zhongli Cui2, Sen Cheng3, Xiaoyun Liu3, Jie Lu4, Jing Tao1, Yu-Feng Yao1,5.
Abstract
HilD, a dominant regulator of Salmonella pathogenicity island 1, can be acetylated by protein acetyltransferase (Pat) in Salmonella Typhimurium, and the acetylation is beneficial to its stability. However, the underlying mechanism of HilD stability regulated by acetylation is not clear. We show here that lysine 297 (K297) located in the helix-turn-helix motif, can be acetylated by Pat. Acetylation of K297 increases HilD stability, but reduces its DNA-binding affinity. In turn, the deacetylated K297 enhances the DNA-binding ability but decreases HilD stability. Under the Salmonella pathogenicity island 1-inducing condition, the acetylation level of K297 is down-regulated. The acetylated K297 (mimicked by glutamine substitution) causes attenuated invasion in HeLa cells, as well as impaired virulence in mouse model, compared with the deacetylated K297 (mimicked by arginine substitution), suggesting that deacetylation of K297 is essential for Salmonella virulence. These findings demonstrate that the acetylation of K297 can regulate both protein stability and DNA-binding ability. This regulation mediated by acetylation not only degrades redundant HilD to keep a moderate protein level to facilitate S. Typhimurium growth but also maintains an appropriate DNA-binding activity of HilD to ensure bacterial pathogenicity.Entities:
Keywords: DNA-binding; HilD; lysine acetylation; stability; virulence
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Year: 2017 PMID: 28329249 DOI: 10.1093/infdis/jix102
Source DB: PubMed Journal: J Infect Dis ISSN: 0022-1899 Impact factor: 5.226