Thomas Douglas D, Miranda Katrina M, Colton Carol A, Citrin Deborah, Espey Michael Graham, Wink David A
Tumor Biology Section, Radiation Biology Branch, National Cancer Institute, NIH, Bethesda, MD 20892, USA.
Antioxid Redox Signal. 2003 Jun;5(3):307-17. doi: 10.1089/152308603322110887.
The role of nitric oxide (NO) in cellular physiology and signaling has been an important aspect in biomedical science over the last decade. As NO is a small uncharged radical, the chemistry of NO within the redox environment of the cell dictates the majority of its biological effects. The mechanisms that have received the most attention from a biological perspective involve reactions with oxygen and superoxide, despite the rich literature of metal-NO chemistry. However, NO and its related species participate in important chemistry with metalloproteins. In addition to the well known direct interactions of NO with heme proteins such as soluble guanylate cyclase and oxyhemoglobin, there is much important, but often underappreciated, chemistry between other nitrogen oxides and heme/metal proteins. Here the basic chemistry of nitrosylation and the interactions of NO and other nitrogen oxides with metal-oxo species such as found in peroxidases and monoxygenases are discussed.
在过去十年中,一氧化氮(NO)在细胞生理学和信号传导中的作用一直是生物医学科学的一个重要方面。由于NO是一种不带电荷的小分子自由基,细胞氧化还原环境中的NO化学性质决定了其大部分生物学效应。尽管金属-NO化学文献丰富,但从生物学角度受到最多关注的机制涉及与氧气和超氧化物的反应。然而,NO及其相关物种与金属蛋白参与重要的化学反应。除了NO与血红素蛋白(如可溶性鸟苷酸环化酶和氧合血红蛋白)的众所周知的直接相互作用外,其他氮氧化物与血红素/金属蛋白之间还存在许多重要但常常被忽视的化学反应。本文讨论了亚硝基化的基本化学以及NO和其他氮氧化物与过氧化物酶和单加氧酶中发现的金属-氧物种的相互作用。