免疫系统
钙
单核细胞
氧化还原
细胞生物学
化学
钙信号传导
反馈回路
生物物理学
生物化学
生物
免疫学
计算机科学
有机化学
计算机安全
作者
Stephanie Saul,Christine S. Gibhardt,Barbara Schmidt,Annette Lis,Bastian Pasieka,David Conrad,Philipp Jung,Rosmarie Gaupp,Bodo Wonnenberg,Ebru Diler,Hedwig Stanisz,Thomas Vogt,Eva C. Schwarz,Markus Bischoff,Mathias Herrmann,Thomas Tschernig,Reinhard Kappl,Heiko Rieger,Barbara A. Niemeyer,Ivan Bogeski
出处
期刊:Science Signaling
[American Association for the Advancement of Science]
日期:2016-03-08
卷期号:9 (418): ra26-ra26
被引量:66
标识
DOI:10.1126/scisignal.aaf1639
摘要
In phagocytes, pathogen recognition is followed by Ca(2+) mobilization and NADPH oxidase 2 (NOX2)-mediated "oxidative burst," which involves the rapid production of large amounts of reactive oxygen species (ROS). We showed that ORAI Ca(2+) channels control store-operated Ca(2+) entry, ROS production, and bacterial killing in primary human monocytes. ROS inactivate ORAI channels that lack an ORAI3 subunit. Staphylococcal infection of mice reduced the expression of the gene encoding the redox-sensitive Orai1 and increased the expression of the gene encoding the redox-insensitive Orai3 in the lungs or in bronchoalveolar lavages. A similar switch from ORAI1 to ORAI3 occurred in primary human monocytes exposed to bacterial peptides in culture. These alterations in ORAI1 and ORAI3 abundance shifted the channel assembly toward a more redox-insensitive configuration. Accordingly, silencing ORAI3 increased the redox sensitivity of the channel and enhanced oxidation-induced inhibition of NOX2. We generated a mathematical model that predicted additional features of the Ca(2+)-redox interplay. Our results identified the ORAI-NOX2 feedback loop as a determinant of monocyte immune responses.
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