Allosteric formulation of thermal transitions in macromolecules, including effects of ligand binding and oligomerization
- 1 October 1989
- journal article
- research article
- Published by Wiley in Biopolymers
- Vol. 28 (10) , 1705-1729
- https://doi.org/10.1002/bip.360281006
Abstract
We examine the effects of concentration (aggregation), buffers, and ligation, under conditions of either constant ligand activity or limited total amount of ligand, upon thermal denaturation of macromolecules as measured by scanning calorimetry. In doing so we utilize and extend an earlier generalized allosteric treatment [S. J. Gill, B. Richey, G. Bishop, and J. Wyman (1985) Biophys. Chem. 21, 1–14], applicable to ligand binding, enthalpy changes, and volume changes in a macromolecular system. The approach is contrasted with formulations based on the idea of structural domains. We show how information from the full scanning calorimetric curves can be utilized in arriving at and testing appropriate models for observed behavior in selected examples.This publication has 40 references indexed in Scilit:
- Linkage of organic phosphates to oxygen binding in human hemoglobin at high concentrationsBiochemistry, 1988
- THE THERMODYNAMIC STABILITY OF PROTEINSAnnual Review of Biophysics, 1987
- Thermodynamics of anti-sickling agents with hemoglobin SJournal of Molecular Biology, 1981
- Structure of the l-arabinose-binding protein from Escherichia coli at 2.4 Å resolutionJournal of Molecular Biology, 1981
- Polysteric linkageJournal of Molecular Biology, 1976
- A thermodynamic approach to the problem of stabilization of globular protein structure: A calorimetric studyJournal of Molecular Biology, 1974
- Thermal investigations of biopolymer solutions and scanning microcalorimetryFEBS Letters, 1974
- A general approach to co-operativity and its application to the oxygen equilibrium of hemoglobin and its effectorsJournal of Molecular Biology, 1974
- Determination of stability of the DNA double helix in an aqueous mediumBiopolymers, 1969
- Method of determining the relative stability of different conformational states of biological macromoleculesBiopolymers, 1969