Helicobacter pylori Infection Activates Src Homology-2 Domain–Containing Phosphatase 2 To Suppress IFN-γ Signaling

卡加 幽门螺杆菌 酪氨酸磷酸化 磷酸化 生物 原癌基因酪氨酸蛋白激酶Src 微生物学 蛋白质酪氨酸磷酸酶 信号转导 炎症 免疫学 细胞生物学 基因 生物化学 毒力 遗传学
作者
Yu‐Chih Wang,Chia‐Ling Chen,Bor‐Shyang Sheu,Yao‐Jong Yang,Po-Chun Tseng,Chia-Yuan Hsieh,Chiou‐Feng Lin
出处
期刊:Journal of Immunology [American Association of Immunologists]
卷期号:193 (8): 4149-4158 被引量:38
标识
DOI:10.4049/jimmunol.1400594
摘要

Helicobacter pylori infection not only induces gastric inflammation but also increases the risk of gastric tumorigenesis. IFN-γ has antimicrobial effects; however, H. pylori infection elevates IFN-γ-mediated gastric inflammation and may suppress IFN-γ signaling as a strategy to avoid immune destruction through an as-yet-unknown mechanism. This study was aimed at investigating the mechanism of H. pylori-induced IFN-γ resistance. Postinfection of viable H. pylori decreased IFN-γ-activated signal transducers and activators of transcription 1 and IFN regulatory factor 1 not only in human gastric epithelial MKN45 and AZ-521 but also in human monocytic U937 cells. H. pylori caused an increase in the C-terminal tyrosine phosphorylation of Src homology-2 domain-containing phosphatase (SHP) 2. Pharmacologically and genetically inhibiting SHP2 reversed H. pylori-induced IFN-γ resistance. In contrast to a clinically isolated H. pylori strain HP238, the cytotoxin-associated gene A (CagA) isogenic mutant strain HP238(CagAm) failed to induce IFN-γ resistance, indicating that CagA regulates this effect. Notably, HP238 and HP238(CagAm) differently caused SHP2 phosphorylation; however, imaging and biochemical analyses demonstrated CagA-mediated membrane-associated binding with phosphorylated SHP2. CagA-independent generation of reactive oxygen species (ROS) contributed to H. pylori-induced SHP2 phosphorylation; however, ROS/SHP2 mediated IFN-γ resistance in a CagA-regulated manner. This finding not only provides an alternative mechanism for how CagA and ROS coregulate SHP2 activation but may also explain their roles in H. pylori-induced IFN-γ resistance.
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