4.6 Article

RIP2 promotes FcγR-mediated reactive oxygen species production

期刊

JOURNAL OF BIOLOGICAL CHEMISTRY
卷 294, 期 26, 页码 10365-10378

出版社

AMER SOC BIOCHEMISTRY MOLECULAR BIOLOGY INC
DOI: 10.1074/jbc.RA118.007218

关键词

Fc-gamma receptor; reactive oxygen species (ROS); Src; inflammation; Fc receptor; signal transduction; receptor interacting protein 2 (RIP2)

资金

  1. NHLBI, National Institutes of Health [R00HL122365]
  2. University of Central Florida
  3. NIAID, National Institutes of Health [R01AI099094]
  4. Deborah and Mark Blackman-Global Lyme Alliance postdoctoral fellowship

向作者/读者索取更多资源

Receptor-interacting protein 2 (RIP2) is a kinase that mediates signaling downstream of the bacterial peptidoglycan sensors NOD1 and NOD2. Genetic loss or pharmaceutical inhibition of RIP2 has been shown to be beneficial in multiple inflammatory disease models with the effects largely attributed to reducing proinflammatory signaling downstream of peptidoglycan recognition. However, given the widespread expression of this kinase and its reported interactions with numerous other proteins, it is possible that RIP2 may also function in roles outside of peptidoglycan sensing. In this work, we show that RIP2 undergoes tyrosine phosphorylation and activation in response to engagement of the Fc gamma receptor (Fc gamma R). Using bone marrow-derived macrophages from WT and RIP2-KO mice, we show that loss of RIP2 leads to deficient Fc gamma R signaling and reactive oxygen species (ROS) production upon Fc gamma R cross-linking without affecting cytokine secretion, phagocytosis, or nitrate/nitrite production. The Fc gamma R-induced ROS response was still dependent on NOD2, as macrophages deficient in this receptor showed similar defects. Mechanistically, we found that different members of the Src family kinases (SFKs) can promote RIP2 tyrosine phosphorylation and activation. Altogether, our findings suggest that RIP2 is functionally important in pathways outside of bacterial peptidoglycan sensing and that involvement in such pathways may depend on the actions of SFKs. These findings will have important implications for future therapies designed to target this kinase.

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