Specificity in S-Nitrosylation: A Short-Range Mechanism for NO Signaling?

S-亚硝基化 机制(生物学) 信号转导 细胞生物学 航程(航空) 化学 生物 计算生物学 生物化学 半胱氨酸 材料科学 哲学 认识论 复合材料
作者
Antonio Martı́nez-Ruiz,Inês M. Araújo,Alicia Izquierdo-Álvarez,Pablo Hernansanz‐Agustín,Santiago Lamas,Juan Manuel Serrador
出处
期刊:Antioxidants & Redox Signaling [Mary Ann Liebert, Inc.]
卷期号:19 (11): 1220-1235 被引量:113
标识
DOI:10.1089/ars.2012.5066
摘要

Nitric oxide (NO) classical and less classical signaling mechanisms (through interaction with soluble guanylate cyclase and cytochrome c oxidase, respectively) operate through direct binding of NO to protein metal centers, and rely on diffusibility of the NO molecule. S-Nitrosylation, a covalent post-translational modification of protein cysteines, has emerged as a paradigm of nonclassical NO signaling.Several nonenzymatic mechanisms for S-nitrosylation formation and destruction have been described. Enzymatic mechanisms for transnitrosylation and denitrosylation have been also studied as regulators of the modification of specific subsets of proteins. The advancement of modification-specific proteomic methodologies has allowed progress in the study of diverse S-nitrosoproteomes, raising clues and questions about the parameters for determining the protein specificity of the modification.We propose that S-nitrosylation is mainly a short-range mechanism of NO signaling, exerted in a relatively limited range of action around the NO sources, and tightly related to the very controlled regulation of subcellular localization of nitric oxide synthases. We review the nonenzymatic and enzymatic mechanisms that support this concept, as well as physiological examples of mammalian systems that illustrate well the precise compartmentalization of S-nitrosylation.Individual and proteomic studies of protein S-nitrosylation-based signaling should take into account the subcellular localization in order to gain further insight into the functional role of this modification in (patho)physiological settings.
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