Long-range electrostatic interactions can influence the folding, stability, and cooperativity of dihydrofolate reductase
- 19 September 1989
- journal article
- research article
- Published by American Chemical Society (ACS) in Biochemistry
- Vol. 28 (19) , 7961-7968
- https://doi.org/10.1021/bi00445a061
Abstract
To test the possibility that long-range interactions might influence the folding and stability of dihydrofolate reductase, a series of single and double mutations at positions 28 and 139 were constructed and their urea-induced unfolding reactions studied by absorbance and circular dichroism spectroscopy. The .alpha. carbons of the two side chains are separated by 15 .ANG. in the native conformation. The replacement of Leu 28 by Arg and of Glu 139 by Gln resulted in additive effects on both kinetic and equilibrium properties of the reversible unfolding transition; no evidence for interaction was obtained. In contrast, the Arg 28/Lys 139 double replacement changed the equilibrium folding model from two state to multistate and showed evidence for interaction in one of the two kinetic phases detected in both unfolding and refolding reaction. The results can be explained in terms of a long-range, repulsive electrostatic interaction between the cationic side chains at these two positions.This publication has 6 references indexed in Scilit:
- Stability mutants of staphylococcal nuclease: large compensating enthalpy-entropy changes for the reversible denaturation reactionBiochemistry, 1988
- Ribonuclease T1 is stabilized by cation and anion bindingBiochemistry, 1988
- Conformational stability of mixed disulfide derivatives of .beta.-lactoglobulin BBiochemistry, 1983
- Solvent denaturationBiopolymers, 1978
- The mechanism of folding of globular proteins. Equilibria and kinetics of conformational transitions of penicillinase from Staphylococcus aureus involving a state of intermediate conformationBiochemical Journal, 1976
- Effect of substrate decomposition on the spectrophotometric assay of dihydrofolate reductaseAnalytical Biochemistry, 1967