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花生四烯酸对吞噬细胞NADPH氧化酶影响的特写观察

A Close-Up View of the Impact of Arachidonic Acid on the Phagocyte NADPH Oxidase.

作者信息

Bizouarn Tania, Souabni Hager, Serfaty Xavier, Bouraoui Aicha, Masoud Rawand, Karimi Gilda, Houée-Levin Chantal, Baciou Laura

机构信息

Laboratoire de Chimie Physique, UMR8000 CNRS, Université Paris-Sud, Université Paris-Saclay, Orsay, France.

出版信息

Methods Mol Biol. 2019;1982:75-101. doi: 10.1007/978-1-4939-9424-3_5.

Abstract

The NADPH oxidase NOX2 complex consists of assembled cytosolic and redox membrane proteins. In mammalian cells, natural arachidonic acid (cis-AA), released by activated phospholipase-A2, plays an important role in the activation of the NADPH oxidase, but the mechanism of action of cis-AA is still a matter of debate. In cell-free systems, cis-AA is commonly used for activation although its structural effects are still unclear. Undoubtedly cis-AA participates in the synergistic multi-partner assembly that can be hardly studied at the molecular level in vivo due to cellular complexity. The capacity of this anionic amphiphilic fatty acid to activate the oxidase is mainly explained by its ability to disrupt intramolecular bonds, mimicking phosphorylation events in cell signaling and therefore allowing protein-protein interactions. Interestingly the geometric isomerism of the fatty acid and its purity are crucial for optimal superoxide production in cell-free assays. Indeed, optimal NADPH oxidase assembly was hampered by the substitution of the cis form by the trans forms of AA isomers (Souabni et al., BBA-Biomembranes 1818:2314-2324, 2012). Structural analysis of the changes induced by these two compounds, by circular dichroism and by biochemical methods, revealed differences in the interaction between subunits. We describe how the specific geometry of AA plays an important role in the activation of the NOX2 complex.

摘要

NADPH氧化酶NOX2复合物由组装好的胞质和氧化还原膜蛋白组成。在哺乳动物细胞中,由活化的磷脂酶A2释放的天然花生四烯酸(顺式-AA)在NADPH氧化酶的激活中起重要作用,但其作用机制仍存在争议。在无细胞系统中,顺式-AA通常用于激活,尽管其结构效应仍不清楚。毫无疑问,顺式-AA参与了协同多伙伴组装,由于细胞复杂性,在体内很难在分子水平上进行研究。这种阴离子两亲性脂肪酸激活氧化酶的能力主要由其破坏分子内键的能力来解释,它模仿细胞信号传导中的磷酸化事件,从而允许蛋白质-蛋白质相互作用。有趣的是,脂肪酸的几何异构体及其纯度对于无细胞试验中最佳超氧化物的产生至关重要。事实上,用AA异构体的反式形式取代顺式形式会阻碍NADPH氧化酶的最佳组装(Souabni等人,《生物化学与生物物理学报-生物膜》1818:2314-2324,2012年)。通过圆二色性和生化方法对这两种化合物诱导的变化进行结构分析,揭示了亚基之间相互作用的差异。我们描述了AA的特定几何形状如何在NOX2复合物的激活中发挥重要作用。

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