Physicochemical basis for the rapid time‐action of LysB28ProB29‐insulin: Dissociation of a protein‐ligand complex
Open Access
- 2 December 1996
- journal article
- research article
- Published by Wiley in Protein Science
- Vol. 5 (12) , 2521-2531
- https://doi.org/10.1002/pro.5560051215
Abstract
The rate-limiting step for the absorption of insulin solutions after subcutaneous injection is considered to be the dissociation of self-associated hexamers to monomers. To accelerate this absorption process, insulin analogues have been designed that possess full biological activity and yet have greatly diminished tendencies to self-associate. Sedimentation velocity and static light scattering results show that the presence of zinc and phenolic ligands (m-cresol and/or phenol) cause one such insulin analogue, LysB28ProB29-human insulin (LysPro), to associate into a hexameric complex. Most importantly, this ligand-bound hexamer retains its rapid-acting pharmacokinetics and pharmacodynamics. The dissociation of the stabilized hexameric analogue has been studied in vitro using static light scattering as well as in vivo using a female pig pharmacodynamic model. Retention of rapid time-action is hypothesized to be due to altered subunit packing within the hexamer. Evidence for modified monomer-monomer interactions has been observed in the X-ray crystal structure of a zinc LysPro hexamer (Ciszak E et al., 1995, Structure 3:615–622). The solution state behavior of LysPro, reported here, has been interpreted with respect to the crystal structure results. In addition, the phenolic ligand binding differences between LysPro and insulin have been compared using isothermal titrating calorimetry and visible absorption spectroscopy of cobalt-containing hexamers. These studies establish that rapid-acting insulin analogues of this type can be stabilized in solution via the formation of hexamer complexes with altered dissociation properties.Keywords
This publication has 41 references indexed in Scilit:
- Hierarchical Modeling of Phenolic Ligand Binding to 2Zn−Insulin HexamersBiochemistry, 1996
- The structure of a rhombohedral R6 insulin hexamer that binds phenolBiopolymers, 1992
- Monomeric Insulins and Their Experimental and Clinical ImplicationsDiabetes Care, 1990
- Liquid chromatographic control of the identity, purity and “potency” of biomolecules used as drugsJournal of Pharmaceutical and Biomedical Analysis, 1989
- Comparison of solution structural flexibility and zinc binding domains for insulin, proinsulin, and miniproinsulinBiochemistry, 1989
- Cobalt Probing of Structural Alternatives for Insulin in SolutionBiological Chemistry Hoppe-Seyler, 1989
- A solution equivalent of the 2Zn→4Zn transformation of insulin in the crystalEuropean Journal of Biochemistry, 1984
- Absorption of soluble and isophane semi-synthetic human and porcine insulin in insulin-dependent diabetic subjectsActa Endocrinologica, 1984
- Transmission of conformational change in insulinNature, 1983
- On the nature of allosteric transitions: A plausible modelJournal of Molecular Biology, 1965