|  Help  |  About  |  Contact Us

Publication : Helicobacter pylori promote inflammation and host defense through the cagA-dependent activation of mTORC1.

First Author  Feng GJ Year  2020
Journal  J Cell Physiol Volume  235
Issue  12 Pages  10094-10108
PubMed ID  32722876 Mgi Jnum  J:305500
Mgi Id  MGI:6705832 Doi  10.1002/jcp.29826
Citation  Feng GJ, et al. (2020) Helicobacter pylori promote inflammation and host defense through the cagA-dependent activation of mTORC1. J Cell Physiol 235(12):10094-10108
abstractText  Mechanistic target of rapamycin complex 1 (mTORC1) functions as regulating different cellular processes, including cell growth, proliferation, motility, survival, metabolism, autophagy, and protein transcription. Recently, it also found to be associated with many infections and inflammatory diseases, playing complex roles in pathogens growth and inflammation regulation. However, the regulation mechanism of mTORC1 in gastric epithelial cells and its role in Helicobacter pylori (H. pylori) infection and related gastritis remain unclear. Here, we identified that the phosphorylation of mechanistic target of rapamycin (mTOR) and the expression of DEP domain-containing mTOR-interacting protein (DEPTOR) was increased in gastric mucosa of H. pylori-infected patients and mice, as well as in H. pylori-infected gastric epithelial cells, which were largely depended on H. pylori cagA. The expression of DEPTOR was regulated via mTORC1, but, in turn, inhibited mTORC1. Knockdown mTOR significantly decreased expression and secretion of cytokines tumor necrosis factor-alpha, interleukin-1beta, and interleukin-6, chemokines CCL7 and CXCL16, and antimicrobial peptide LL37 in vitro, while knockdown DEPTOR had the opposite effect. Similar observations were made using mTOR knockout (KO) mice in vivo, moreover. The gastric inflammation was attenuated, while the bacterial burden was increased in mTOR KO mice during H. pylori infection. These findings supported H. pylori promote gastritis and inhibit bacterial colonization through the cagA-dependent activation of mTORC1.
Quick Links:
 
Quick Links:
 

Expression

Publication --> Expression annotations

 

Other

3 Authors

4 Bio Entities

Trail: Publication

0 Expression