TY - JOUR
T1 - Experiment and theory highlight role of native state topology in SH3 folding
AU - Riddle, David S.
AU - Grantcharova, Viara P.
AU - Santiago, Jed V.
AU - Aim, Eric
AU - Ruczinski, Ingo
AU - Baker, David
N1 - Funding Information:
We thank members of the Baker group for useful comments on the manuscript, and L. Serrano, C. Dobson and their coworkers for sharing their manuscripts before publication. This work was supported by grants from the NIH and the ONR and Young Investigator awards to D.B. from the NSF and the Packard Foundation and by the Molecular Biophysics Training Grant from the NIH to E.A.
PY - 1999
Y1 - 1999
N2 - We use a combination of experiments, computer simulations and simple model calculations to characterize, first, the folding transition state ensemble of the src SH3 domain, and second, the features of the protein that determine its folding mechanism. Kinetic analysis of mutations at 52 of the 57 residues in the src SH3 domain revealed that the transition state ensemble is even more polarized than suspected earlier: no single alanine substitution in the N-terminal 15 residues or the C-terminal 9 residues has more than a two-fold effect on the folding rate, while such substitutions at 15 sites in the central three-stranded β-sheet cause significant decreases in the folding rate. Molecular dynamics (MD) unfolding simulations and ab initio folding simulations on the src SH3 domain exhibit a hierarchy of folding similar to that observed in the experiments. The similarity in folding mechanism of different SH3 domains and the similar hierarchy of structure formation observed in the experiments and the simulations can be largely accounted for by a simple native state topology-based model of protein folding energy landscapes.
AB - We use a combination of experiments, computer simulations and simple model calculations to characterize, first, the folding transition state ensemble of the src SH3 domain, and second, the features of the protein that determine its folding mechanism. Kinetic analysis of mutations at 52 of the 57 residues in the src SH3 domain revealed that the transition state ensemble is even more polarized than suspected earlier: no single alanine substitution in the N-terminal 15 residues or the C-terminal 9 residues has more than a two-fold effect on the folding rate, while such substitutions at 15 sites in the central three-stranded β-sheet cause significant decreases in the folding rate. Molecular dynamics (MD) unfolding simulations and ab initio folding simulations on the src SH3 domain exhibit a hierarchy of folding similar to that observed in the experiments. The similarity in folding mechanism of different SH3 domains and the similar hierarchy of structure formation observed in the experiments and the simulations can be largely accounted for by a simple native state topology-based model of protein folding energy landscapes.
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U2 - 10.1038/14901
DO - 10.1038/14901
M3 - Article
C2 - 10542092
AN - SCOPUS:0032734515
SN - 1072-8368
VL - 6
SP - 1016
EP - 1024
JO - Nature Structural Biology
JF - Nature Structural Biology
IS - 11
ER -