4.5 Article

Studying Protein-Protein Binding through T-Jump Induced Dissociation: Transient 2D IR Spectroscopy of Insulin Dimer

Journal

JOURNAL OF PHYSICAL CHEMISTRY B
Volume 120, Issue 23, Pages 5134-5145

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.jpcb.6b03246

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Funding

  1. National Science Foundation [CHE-1414486, CHE-1212557]

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Insulin homodimer associates through the coupled folding and binding of two partially disordered monomers. We aim to understand this dynamics by observing insulin dimer dissociation initiated with a nanosecond temperature jump using transient two-dimensional infrared spectroscopy (2D IR) of amide I vibrations. With the help of equilibrium FTIR and 2D IR spectra, and through a systematic study of the dependence of dissociation kinetics on temperature and insulin concentration, we are able to decompose and analyze the spectral evolution associated with different secondary structures. We find that the dissociation under all conditions is characterized by two processes whose influence on the kinetics varies with temperature: the unfolding of the beta sheet at the dimer interface observed as exponential kinetics between 250 and 1000 its and nonexponential kinetics between 5 and 150,us that we attribute to monomer disordering. Microscopic reversibility arguments lead us to conclude that dimer association requires significant conformational changes within the monomer in concert with the folding of the interfacial beta sheet. While our data indicates a more complex kinetics, we apply a two-state model to the beta-sheet unfolding kinetics to extract thermodynamic parameters and kinetic rate constants. The association rate constant, k(a) (23 degrees C) = 8.8 x 10(5) M-1 s(-1) (pH 0, 20% EtOD), is approximately 3 orders of magnitude slower than the calculated diffusion limited association rate, which is explained by the significant destabilizing effect of ethanol on the dimer state and the highly positive charge of the monomers at this pH.

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