Structural and mechanistic aspects of S-S bonds in the thioredoxin-like family of proteins
- PMID: 30367780
- DOI: 10.1515/hsz-2018-0319
Structural and mechanistic aspects of S-S bonds in the thioredoxin-like family of proteins
Abstract
Disulfide bonds play a critical role in a variety of structural and mechanistic processes associated with proteins inside the cells and in the extracellular environment. The thioredoxin family of proteins like thioredoxin (Trx), glutaredoxin (Grx) and protein disulfide isomerase, are involved in the formation, transfer or isomerization of disulfide bonds through a characteristic thiol-disulfide exchange reaction. Here, we review the structural and mechanistic determinants behind the thiol-disulfide exchange reactions for the different enzyme types within this family, rationalizing the known experimental data in light of the results from computational studies. The analysis sheds new atomic-level insight into the structural and mechanistic variations that characterize the different enzymes in the family, helping to explain the associated functional diversity. Furthermore, we review here a pattern of stabilization/destabilization of the conserved active-site cysteine residues presented beforehand, which is fully consistent with the observed roles played by the thioredoxin family of enzymes.
Keywords: Grx; PDI; Trx; disulfide; pKa; thiol-disulfide exchange.
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References
-
- Adachi, T., Weisbrod, R.M., Pimentel, D.R., Ying, J., Sharov, V.S., Schoneich, C., and Cohen, R.A. (2004). S-Glutathiolation by peroxynitrite activates SERCA during arterial relaxation by nitric oxide. Nat. Med. 10, 1200–1207.
-
- Alegre-Cebollada, J., Perez-Jimenez, R., Kosuri, P., and Fernandez, J.M. (2010). Single-molecule force spectroscopy approach to enzyme catalysis. J. Biol. Chem. 285, 18961–18966.
-
- Appenzeller-Herzog, C. and Ellgaard, L. (2008). In vivo reduction-oxidation state of protein disulfide isomerase: the two active sites independently occur in the reduced and oxidized forms. Antioxid. Redox Signal. 10, 55–64.
-
- Aslund, F., Berndt, K.D., and Holmgren, A. (1997). Redox potentials of glutaredoxins and other thiol-disulfide oxidoreductases of the thioredoxin superfamily determined by direct protein-protein redox equilibria. J. Biol. Chem. 272, 30780–30786.
-
- Axelsson, K. and Mannervik, B. (1980). General specificity of cytoplasmic thioltransferase (thiol:disulfide oxidoreductase) from rat liver for thiol and disulfide substrates. Biochim. Biophys. Acta 613, 324–336.
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