The folding of coiled coil peptides has traditionally been interpreted in terms of native dimer and unfolded monomers. Calculations using AGA-DIR and experimental studies of fragments suggest that the monomers of the coiled coil peptide, GCN4-p1, contain significant residual helical structure. A simple model based on diffusion-collision theory predicts not only the measured folding rate within an order of magnitude, but also predicts remarkably well the effect of alanine to glyXcine mutations. We suggest that intrinsic helix stability is a major determinant of the folding rate of the GCN4 coiled coil. (C) 1999 Academic Press.
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Amdur I., 1966, Chemical Kinetics: Principles and Selected Topics
机构:MRC Unit for Protein Function, Design Cambridge IRC for Protein Engineering Department, Chemistry University of Cambridge, Cambridge, CB2 1EW, Lensfield Road
FERSHT, AR
MATOUSCHEK, A
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机构:MRC Unit for Protein Function, Design Cambridge IRC for Protein Engineering Department, Chemistry University of Cambridge, Cambridge, CB2 1EW, Lensfield Road
MATOUSCHEK, A
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机构:MRC Unit for Protein Function, Design Cambridge IRC for Protein Engineering Department, Chemistry University of Cambridge, Cambridge, CB2 1EW, Lensfield Road
机构:MRC Unit for Protein Function, Design Cambridge IRC for Protein Engineering Department, Chemistry University of Cambridge, Cambridge, CB2 1EW, Lensfield Road
FERSHT, AR
MATOUSCHEK, A
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机构:MRC Unit for Protein Function, Design Cambridge IRC for Protein Engineering Department, Chemistry University of Cambridge, Cambridge, CB2 1EW, Lensfield Road
MATOUSCHEK, A
SERRANO, L
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机构:MRC Unit for Protein Function, Design Cambridge IRC for Protein Engineering Department, Chemistry University of Cambridge, Cambridge, CB2 1EW, Lensfield Road