Literature DB >> 17292839

Prediction of protein-protein association rates from a transition-state theory.

Ramzi Alsallaq1, Huan-Xiang Zhou.   

Abstract

We recently developed a theory for the rates of protein-protein association. The theory is based on the concept of a transition state, which separates the bound state, with numerous short-range interactions but restricted translational and rotational freedom, and the unbound state, with, at most, a small number of interactions but expanded configurational freedom. When not accompanied by large-scale conformational changes, protein-protein association becomes diffusion limited. The association rate is then predicted as k(a)=k(a)(0)exp(-DeltaG(el)(double dagger)/k(B)T), where DeltaG(el)(double dagger) is the electrostatic interaction free energy in the transition state, k(a)(0) is the rate in the absence of electrostatic interactions, and k(B)T is thermal energy. Here, this transition-state theory is used to predict the association rates of four protein complexes. The predictions for the wild-type complexes and 23 mutants are found to agree closely with experimental data over wide ranges of ionic strength.

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Year:  2007        PMID: 17292839     DOI: 10.1016/j.str.2007.01.005

Source DB:  PubMed          Journal:  Structure        ISSN: 0969-2126            Impact factor:   5.006


  32 in total

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8.  Rationalizing 5000-fold differences in receptor-binding rate constants of four cytokines.

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9.  A Computational Model for Kinetic Studies of Cadherin Binding and Clustering.

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10.  On the Dielectric Boundary in Poisson-Boltzmann Calculations.

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