Lambeth J David, Kawahara Tsukasa, Diebold Becky
Department of Pathology and Laboratory Medicine, 148 Whitehead Biomedical Research Building, Emory University, 615 Michael Street, Atlanta, GA 30322, USA.
Free Radic Biol Med. 2007 Aug 1;43(3):319-31. doi: 10.1016/j.freeradbiomed.2007.03.028. Epub 2007 Apr 1.
In recent years, it has become clear that reactive oxygen species (ROS, which include superoxide, hydrogen peroxide, and other metabolites) are produced in biological systems. Rather than being simply a by-product of aerobic metabolism, it is now recognized that specific enzymes--the Nox (NADPH oxidase) and Duox (Dual oxidase) enzymes--seem to have the sole function of generating ROS in a carefully regulated manner, and key roles in signal transduction, immune function, hormone biosynthesis, and other normal biological functions are being uncovered. The prototypical Nox is the respiratory burst oxidase or phagocyte oxidase, which generates large amounts of superoxide and other reactive species in the phagosomes of neutrophils and macrophages, playing a central role in innate immunity by killing microbes. This enzyme system has been extensively studied over the past two decades, and provides a basis for comparison with the more recently described Nox and Duox enzymes, which generate ROS in a variety of cells and tissues. This review first considers the structure and regulation of the respiratory burst oxidase, and then reviews recent studies relating to the regulation of the activity of the novel Nox/Duox enzymes. The regulation of Nox and Duox expression in tissues and by specific stimuli is also considered here. An accompanying review considers biological and pathological roles of the Nox family of enzymes.
近年来,有一点已变得很清楚,即生物系统中会产生活性氧(ROS,包括超氧化物、过氧化氢及其他代谢产物)。现在人们认识到,活性氧并非仅仅是有氧代谢的副产物,特定的酶——Nox(烟酰胺腺嘌呤二核苷酸磷酸氧化酶)和Duox(双氧化酶)——似乎具有以精细调控的方式产生活性氧的唯一功能,而且其在信号转导、免疫功能、激素生物合成及其他正常生物学功能中的关键作用也正被揭示出来。典型的Nox是呼吸爆发氧化酶或吞噬细胞氧化酶,它在中性粒细胞和巨噬细胞的吞噬体中产生大量超氧化物及其他活性物质,通过杀灭微生物在固有免疫中发挥核心作用。在过去二十年里,该酶系统已得到广泛研究,并为与最近描述的在各种细胞和组织中产生活性氧的Nox和Duox酶进行比较提供了基础。本文首先探讨呼吸爆发氧化酶的结构与调控,然后回顾与新型Nox/Duox酶活性调控相关的近期研究。本文还考虑了组织中以及特定刺激下Nox和Duox表达的调控。另一篇相关综述探讨了Nox酶家族的生物学和病理学作用。