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Molecular Dynamics Simulations and Kinetic Measurements to Estimate and Predict Protein–Ligand Residence Times

Authors :
Perron-Sierra Françoise
Yves Charton
Giovanni Bottegoni
Michel Wierzbicki
Luca Mollica
Isabelle Theret
Pierre Ducrot
Mathias Antoine
Sergio Decherchi
Andrea Cavalli
Jean Marie Fourquez
Gilles Ferry
Jean A. Boutin
Mollica, Luca
Theret, Isabelle
Antoine, Mathia
Perron-Sierra, Françoise
Charton, Yve
Fourquez, Jean-Marie
Wierzbicki, Michel
Boutin, Jean A.
Ferry, Gille
Decherchi, Sergio
Bottegoni, Giovanni
Ducrot, Pierre
Cavalli, Andrea
Source :
Journal of Medicinal Chemistry. 59:7167-7176
Publication Year :
2016
Publisher :
American Chemical Society (ACS), 2016.

Abstract

Ligand-target residence time is emerging as a key drug discovery parameter because it can reliably predict drug efficacy in vivo. Experimental approaches to binding and unbinding kinetics are nowadays available, but we still lack reliable computational tools for predicting kinetics and residence time. Most attempts have been based on brute-force molecular dynamics (MD) simulations, which are CPU-demanding and not yet particularly accurate. We recently reported a new scaled-MD-based protocol, which showed potential for residence time prediction in drug discovery. Here, we further challenged our procedure's predictive ability by applying our methodology to a series of glucokinase activators that could be useful for treating type 2 diabetes mellitus. We combined scaled MD with experimental kinetics measurements and X-ray crystallography, promptly checking the protocol's reliability by directly comparing computational predictions and experimental measures. The good agreement highlights the potential of our scaled-MD-based approach as an innovative method for computationally estimating and predicting drug residence times.

Details

ISSN :
15204804 and 00222623
Volume :
59
Database :
OpenAIRE
Journal :
Journal of Medicinal Chemistry
Accession number :
edsair.doi.dedup.....17bbf7e54f47161c90b3f39cf8515114
Full Text :
https://doi.org/10.1021/acs.jmedchem.6b00632