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Assessment of Reversibility for Covalent Cysteine Protease Inhibitors Using Quantum Mechanics/Molecular Mechanics Free Energy Surfaces

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Author(s):
Dos Santos, Alberto M. ; Santana Oliveira, Amanda Ruslana ; da Costa, Clauber H. S. ; Kenny, Peter W. ; Montanari, Carlos A. ; Varela, Jaldyr de Jesus G. ; Lameira, Jeronimo
Total Authors: 7
Document type: Journal article
Source: JOURNAL OF CHEMICAL INFORMATION AND MODELING; v. 62, n. 17, p. 12-pg., 2022-09-12.
Abstract

We have used molecular dynamics (MD) simulations with hybrid quantum mechanics/molecular mechanics (QM/MM) potentials to investigate the reaction mechanism for covalent inhibition of cathepsin K and assess the reversibility of inhibition. The computed free energy profiles suggest that a nucleophilic attack by the catalytic cysteine on the inhibitor warhead and proton transfer from the catalytic histidine occur in a concerted manner. The results indicate that the reaction is more strongly exergonic for the alkyne-based inhibitors, which bind irreversibly to cathepsin K, than for the nitrile-based inhibitor odanacatib, which binds reversibly. Gas-phase energies were also calculated for the addition of methanethiol to structural prototypes for a number of warheads of interest in cysteine protease inhibitor design in order to assess electrophilicity. The approaches presented in this study are particularly applicable to assessment of novel warheads, and computed transition state geometries can be incorporated into molecular models for covalent docking. (AU)

FAPESP's process: 18/21749-3 - Computational study of cruzain enzyme by reversible covalent inhibitors
Grantee:Carlos Alberto Montanari
Support Opportunities: Research Grants - Visiting Researcher Grant - Brazil
FAPESP's process: 13/18009-4 - Molecular design, synthesis and trypanocidal activity of cruzain reversible covalent inhibitors
Grantee:Carlos Alberto Montanari
Support Opportunities: Research Projects - Thematic Grants