Kao Yu-Ya, Gianni Davide, Bohl Benjamin, Taylor Ross M, Bokoch Gary M
Department of Immunology, The Scripps Research Institute, La Jolla, California 92037, USA.
J Biol Chem. 2008 May 9;283(19):12736-46. doi: 10.1074/jbc.M801010200. Epub 2008 Mar 17.
The NADPH oxidases (Noxs) are a family of superoxide-generating enzymes implicated in a variety of biological processes. Full activity of Nox1, -2, and -3 requires the action of a Rac GTPase. A direct regulatory interaction of Rac with Nox2 has been proposed as part of a two-step mechanism for regulating electron transfer during superoxide formation. Using truncation analysis of Rac binding to the cytoplasmic tail of Nox2, along with peptides derived from this region in cell-free assays, we identify a Rac interaction site within amino acids 419-430 of Nox2. This region is required for binding Rac2 but not p47(phox) or p67(phox) cytosolic regulatory factors. A cell-permeant version of the peptide encompassing amino acids 419-430 specifically inhibits NADPH oxidase activation in intact human neutrophils. Mutational analysis of the putative Rac-binding site revealed specific residues, particularly Lys-421, Tyr-425, and Lys-426, individually required for Rac-dependent NADPH oxidase activity that are conserved in the Rac-regulated Nox1, Nox2, and Nox3 enzymes but not in Nox4 or Nox5. Mutation of the conserved residues in the Rac-binding site of Nox1 also result in the loss of Rac-dependent activity. Our data identify a functional Rac interaction site conserved in Rac-dependent Noxs and support a direct regulatory interaction of Rac GTPases to promote activation of these NADPH oxidases.
NADPH氧化酶(Noxs)是一类可产生超氧化物的酶家族,参与多种生物学过程。Nox1、-2和-3的完整活性需要Rac GTP酶的作用。有人提出Rac与Nox2之间存在直接调节相互作用,作为超氧化物形成过程中调节电子转移的两步机制的一部分。通过对Rac与Nox2细胞质尾部结合的截短分析,以及在无细胞试验中使用源自该区域的肽,我们在Nox2的419 - 430氨基酸内鉴定出一个Rac相互作用位点。该区域是结合Rac2所必需的,但不是结合p47(phox)或p67(phox)胞质调节因子所必需的。包含419 - 430氨基酸的细胞穿透肽可特异性抑制完整人中性粒细胞中的NADPH氧化酶激活。对假定的Rac结合位点的突变分析揭示了特定残基,特别是Lys - 421、Tyr - 425和Lys - 426,它们是Rac依赖性NADPH氧化酶活性单独所需的,在Rac调节的Nox1、Nox2和Nox3酶中保守,但在Nox4或Nox5中不保守。Nox1的Rac结合位点中保守残基的突变也导致Rac依赖性活性丧失。我们的数据鉴定出在Rac依赖性Noxs中保守的功能性Rac相互作用位点,并支持Rac GTP酶的直接调节相互作用以促进这些NADPH氧化酶的激活。