Oxidative Modification of Proteins: From Damage to Catalysis, Signaling, and Beyond

氧化磷酸化 活性氧 氧化还原 化学 生物化学 功能(生物学) 氧化应激 细胞生物学 生物 信号转导 有机化学
作者
Marilene Demasi,Ohára Augusto,Etelvino José Henriques Bechara,Renata N. Bicev,Fernanda M. Cerqueira,Fernanda Marques da Cunha,Ana Denicola,Fernando Gomes,Sayuri Miyamoto,Luís Eduardo Soares Netto,Lía M. Randall,Cassius V. Stevani,Leonor Thomson
出处
期刊:Antioxidants & Redox Signaling [Mary Ann Liebert, Inc.]
卷期号:35 (12): 1016-1080 被引量:26
标识
DOI:10.1089/ars.2020.8176
摘要

Significance: The systematic investigation of oxidative modification of proteins by reactive oxygen species started in 1980. Later, it was shown that reactive nitrogen species could also modify proteins. Some protein oxidative modifications promote loss of protein function, cleavage or aggregation, and some result in proteo-toxicity and cellular homeostasis disruption. Recent Advances: Previously, protein oxidation was associated exclusively to damage. However, not all oxidative modifications are necessarily associated with damage, as with Met and Cys protein residue oxidation. In these cases, redox state changes can alter protein structure, catalytic function, and signaling processes in response to metabolic and/or environmental alterations. This review aims to integrate the present knowledge on redox modifications of proteins with their fate and role in redox signaling and human pathological conditions. Critical Issues: It is hypothesized that protein oxidation participates in the development and progression of many pathological conditions. However, no quantitative data have been correlated with specific oxidized proteins or the progression or severity of pathological conditions. Hence, the comprehension of the mechanisms underlying these modifications, their importance in human pathologies, and the fate of the modified proteins is of clinical relevance. Future Directions: We discuss new tools to cope with protein oxidation and suggest new approaches for integrating knowledge about protein oxidation and redox processes with human pathophysiological conditions. Antioxid. Redox Signal. 35, 1016-1080.
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