Peroxiredoxins: A historical overview and speculative preview of novel mechanisms and emerging concepts in cell signaling

过氧化物还原蛋白 半胱氨酸 化学 硫醇 生物化学 硫氧还蛋白 细胞内 过氧亚硝酸盐 亚磺酸 亚硫酸 过氧化物酶 超氧化物 有机化学
作者
Sue Goo Rhee,Ho Zoon Chae,Kanghwa Kim
出处
期刊:Free Radical Biology and Medicine [Elsevier]
卷期号:38 (12): 1543-1552 被引量:1396
标识
DOI:10.1016/j.freeradbiomed.2005.02.026
摘要

The observation that purified yeast glutamine synthetase is rapidly inactivated in a thiol-containing buffer yet retains activity in crude extracts containing the same thiol led to our discovery of an enzyme that protects against oxidation in a thiol-containing system. This novel antioxidant enzyme was shown to reduce hydroperoxides and, more recently, peroxynitrite with the use of electrons provided by a physiological thiol like thioredoxin. It defined a family of proteins, present in organisms from all kingdoms, that was named peroxiredoxin (Prx). All Prx enzymes contain a conserved Cys residue that undergoes a cycle of peroxide-dependent oxidation and thiol-dependent reduction during catalysis. Mammalian cells express six isoforms of Prx (Prx I to VI), which are classified into three subgroups (2-Cys, atypical 2-Cys, and 1-Cys) based on the number and position of Cys residues that participate in catalysis. The relative abundance of Prx enzymes in mammalian cells appears to protect cellular components by removing the low levels of peroxides produced as a result of normal cellular metabolism. During catalysis, the active site cysteine is occasionally overoxidized to cysteine sulfinic acid. Contrary to the general belief that oxidation to the sulfinic state is an irreversible process in cells, studies on the fate of the overoxidized Prx species revealed a mechanism by which the catalytically active thiol form is recovered. This sulfinic reduction is a slow, ATP-dependent process that is specific to 2-Cys Prx isoforms. This reversible overoxidation may represent an adaptation unique to eukaryotic cells that accommodates the intracellular messenger function of H2O2, but experimental validation of such speculation is yet to come.
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