Issue 6, 2015

Toward structure prediction of cyclic peptides

Abstract

Cyclic peptides are a promising class of molecules that can be used to target specific protein–protein interactions. A computational method to accurately predict their structures would substantially advance the development of cyclic peptides as modulators of protein–protein interactions. Here, we develop a computational method that integrates bias-exchange metadynamics simulations, a Boltzmann reweighting scheme, dihedral principal component analysis and a modified density peak-based cluster analysis to provide a converged structural description for cyclic peptides. Using this method, we evaluate the performance of a number of popular protein force fields on a model cyclic peptide. All the tested force fields seem to over-stabilize the α-helix and PPII/β regions in the Ramachandran plot, commonly populated by linear peptides and proteins. Our findings suggest that re-parameterization of a force field that well describes the full Ramachandran plot is necessary to accurately model cyclic peptides.

Graphical abstract: Toward structure prediction of cyclic peptides

Supplementary files

Article information

Article type
Paper
Submitted
09 Oct 2014
Accepted
05 Dec 2014
First published
05 Dec 2014

Phys. Chem. Chem. Phys., 2015,17, 4210-4219

Author version available

Toward structure prediction of cyclic peptides

H. Yu and Y. Lin, Phys. Chem. Chem. Phys., 2015, 17, 4210 DOI: 10.1039/C4CP04580G

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