Steric exclusion is the principal source of the preferential hydration of proteins in the presence of polyethylene glycols
Open Access
- 1 September 1992
- journal article
- research article
- Published by Wiley in Protein Science
- Vol. 1 (9) , 1133-1143
- https://doi.org/10.1002/pro.5560010907
Abstract
The preferential interactions of bovine serum albumin, lysozyme, chymotrypsinogen, ribonuclease A, and β‐lactoglobulin with polyethylene glycols (PEGs) of molecular weight 200–6,000 have been measured by dialysis equilibrium coupled with high precision densimetry. All the proteins were found to be preferentially hydrated in all the PEGs, and the magnitude of the preferential hydration increased with increasing PEG size for each protein. The change in the chemical potentials of the proteins with the addition of the PEGs had highly positive values, indicating a strong thermodynamic destabilization of the system by the PEGs. A viscosity study of the PEGs showed them to be randomly coiled polymers, as their radii of gyration were related to the molecular weight by Rg = aM0.55. The thickness of the effective shell impenetrable to PEG around protein molecules, calculated from the preferential hydration, was found to vary with PEG molecular weight in similar fashion as the PEG radius of gyration, supporting the proposal (Arakawa, T. & Timasheff, S.N., 1985a, Biochemistry 24, 6756–6762) that the preferential exclusion of PEGs from proteins is due principally to the steric exclusion of PEG from the protein domain, although favorable interactions with protein surface residues, in particular nonpolar ones, may compete with the exclusion. These thermodynamically unfavorable preferential exclusion interactions lead to the action of PEGs as precipitants, although they may destabilize protein structure at higher temperatures.Keywords
This publication has 48 references indexed in Scilit:
- Stabilization of detergent-solubilized Ca2+-ATPase by poly(ethylene glycol)Biochimica et Biophysica Acta (BBA) - Biomembranes, 1989
- Enzyme action in polymer and salt solutions. I. Stability of penicillin acylase in poly(ethylene glycol) and potassium phosphate solutions in relation to water activityBiochimica et Biophysica Acta (BBA) - Protein Structure and Molecular Enzymology, 1987
- Interaction of calf brain tubulin with poly(ethylene glycols)Biochemistry, 1979
- Interaction of ribonuclease A with aqueous 2-methyl-2,4-pentanediol at pH 5.8Biochemistry, 1978
- Thermodynamics of protein denaturation. III. Denaturation of ribonuclease in water and in aqueous urea and aqueous ethanol mixturesJournal of the American Chemical Society, 1967
- Structural Studies of Ribonuclease. XI. Kinetics of DenaturationJournal of the American Chemical Society, 1963
- Molecular Interactions in β-Lactoglobulin. II. Ultracentrifugal and Electrophoretic Studies of the Association of β-Lactoglobulin below its Isoelectric Point2Journal of the American Chemical Society, 1960
- Changes in the Intrinsic Viscosity and Optical Rotation of Bovine Plasma Albumin Associated with Acid Binding1Journal of the American Chemical Society, 1954
- The Hydration, Size and Shape of Tobacco Mosaic Virus2a,2bJournal of the American Chemical Society, 1949
- Physical Chemistry of Protein Solutions. I. Derivation of the Equations for the Osmotic Pressure1Journal of the American Chemical Society, 1946