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Negative Activation Enthalpies in the Kinetics of Protein Folding

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Specialty Science
Date 1995 Sep 12
PMID 7568045
Citations 79
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Abstract

Although the rates of chemical reactions become faster with increasing temperature, the converse may be observed with protein-folding reactions. The rate constant for folding initially increases with temperature, goes through a maximum, and then decreases. The activation enthalpy is thus highly temperature dependent because of a large change in specific heat (delta Cp). Such a delta Cp term is usually presumed to be a consequence of a large decrease in exposure of hydrophobic surfaces to water as the reaction proceeds from the denatured state to the transition state for folding: the hydrophobic side chains are surrounded by "icebergs" of water that melt with increasing temperature, thus making a large contribution to the Cp of the denatured state and a smaller one to the more compact transition state. The rate could also be affected by temperature-induced changes in the conformational population of the ground state: the heat required for the progressive melting of residual structure in the denatured state will contribute to delta Cp. By examining two proteins with different refolding mechanisms, we are able to find both of these two processes; barley chymotrypsin inhibitor 2, which refolds from a highly unfolded state, fits well to a hydrophobic interaction model with a constant delta Cp of activation, whereas barnase, which refolds from a more structured denatured state, deviates from this ideal behavior.

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References
1.
Hagerman P, Baldwin R . A quantitative treatment of the kinetics of the folding transition of ribonuclease A. Biochemistry. 1976; 15(7):1462-73. DOI: 10.1021/bi00652a017. View

2.
Pohl F . Temperature-dependence of the kinetics of folding of chymotrypsinogen A. FEBS Lett. 1976; 65(3):293-6. DOI: 10.1016/0014-5793(76)80132-9. View

3.
Segawa S, Sugihara M . Characterization of the transition state of lysozyme unfolding. I. Effect of protein-solvent interactions on the transition state. Biopolymers. 1984; 23(11 Pt 2):2473-88. DOI: 10.1002/bip.360231122. View

4.
Privalov P, Griko YuV , Venyaminov SYu , Kutyshenko V . Cold denaturation of myoglobin. J Mol Biol. 1986; 190(3):487-98. DOI: 10.1016/0022-2836(86)90017-3. View

5.
Chen B, Baase W, SCHELLMAN J . Low-temperature unfolding of a mutant of phage T4 lysozyme. 2. Kinetic investigations. Biochemistry. 1989; 28(2):691-9. DOI: 10.1021/bi00428a042. View