Increasing the Reactivity of an Artificial Dithiol−Disulfide Pair through Modification of the Electrostatic Milieu
- 19 March 2005
- journal article
- Published by American Chemical Society (ACS) in Biochemistry
- Vol. 44 (15) , 5899-5906
- https://doi.org/10.1021/bi0500372
Abstract
The thiol-disulfide exchange reaction plays a central role in the formation of disulfide bonds in newly synthesized proteins and is involved in many aspects of cellular metabolism. Because the thiolate form of the cysteine residue is the key reactive species, its electrostatic milieu is thought to play a key role in determining the rates of thiol disulfide exchange reactions. While modest reactivity effects have previously been seen in peptide model studies, here, we show that introduction of positive charges can have dramatic effects on disulfide bond formation on a structurally restricted surface. We have studied properties of vicinal cysteine residues in proteins using a model system based on redox-sensitive yellow fluorescent protein (rxYFP). In this system, the formation of a disulfide bond between two cysteines Cys149 and Cys202 is accompanied by a 2.2-fold decrease in fluorescence. Introduction of positively charged amino acids in the proximity of the two cysteines resulted in an up to 13-fold increase in reactivity toward glutathione disulfide. Determination of the individual pK(a) values of the cysteines showed that the observed increase in reactivity was caused by a decrease in the pK(a) value of Cys149, as well as favorable electrostatic interactions with the negatively charged reagents. The results presented here show that the electrostatic milieu of cysteine thiols in proteins can have substantial effects on the rates of the thiol-disulfide exchange reactions.Keywords
This publication has 9 references indexed in Scilit:
- Monitoring disulfide bond formation in the eukaryotic cytosolThe Journal of cell biology, 2004
- Theoretical Insights into the Mechanism for Thiol/Disulfide ExchangeChemistry – A European Journal, 2003
- Biochemical Characterization of Yeast Mitochondrial Grx5 Monothiol GlutaredoxinJournal of Biological Chemistry, 2003
- Catalytic Properties, Thiol p K Value, and Redox Potential of Trypanosoma brucei TryparedoxinJournal of Biological Chemistry, 2002
- Shedding light on disulfide bond formation: engineering a redox switch in green fluorescent proteinThe EMBO Journal, 2001
- Circularly permuted variants of the green fluorescent proteinFEBS Letters, 1999
- Elimination of All Charged Residues in the Vicinity of the Active-site Helix of the Disulfide Oxidoreductase DsbAJournal of Biological Chemistry, 1997
- Rate constants and equilibrium constants for thiol-disulfide interchange reactions involving oxidized glutathioneJournal of the American Chemical Society, 1980
- Ellman's reagent: 5,5′-dithiobis(2-nitrobenzoic acid)—a reexaminationAnalytical Biochemistry, 1979