Succination of proteins in diabetes

N Frizzell, M Lima, JW Baynes - Free radical research, 2011 - Taylor & Francis
N Frizzell, M Lima, JW Baynes
Free radical research, 2011Taylor & Francis
Cysteine is arguably the most reactive amino acid in protein. A wide range of cysteine
derivatives is formed in vivo, resulting from oxidation, nitrosation, alkylation and acylation
reactions. This review describes succination of proteins, an irreversible chemical
modification of cysteine by the Krebs cycle intermediate, fumarate, yielding S-(2-succinyl)
cysteine (2SC). Intracellular fumarate concentration and succination of proteins are
increased by hyperpolarization of the inner mitochondrial membrane and develop in concert …
Abstract
Cysteine is arguably the most reactive amino acid in protein. A wide range of cysteine derivatives is formed in vivo, resulting from oxidation, nitrosation, alkylation and acylation reactions. This review describes succination of proteins, an irreversible chemical modification of cysteine by the Krebs cycle intermediate, fumarate, yielding S-(2-succinyl)cysteine (2SC). Intracellular fumarate concentration and succination of proteins are increased by hyperpolarization of the inner mitochondrial membrane and develop in concert with mitochondrial and oxidative stress in diabetes. Increased succination of glyceraldehyde-3-phosphate dehydrogenase explains the loss in specific activity of this enzyme in muscle of streptozotocin-diabetic rats and increased succination of adiponectin may explain the decreased secretion of adiponectin from adipose tissue in type 2 diabetes. In addition to GAPDH and adiponectin, other succinated proteins identified in adipocytes include cytoskeletal proteins (tubulin, actin) and chaperone proteins in the endoplasmic reticulum. Succination of adipocyte protein in vitro is inhibited by uncouplers of oxidative phosphorylation and by inhibitors of ER stress. 2SC serves as a biomarker of mitochondrial stress and recent studies suggest that succination is the mechanistic link between mitochondrial and ER stress in diabetes.
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