Literature DB >> 34455628

A multiscale approach to predict the binding mode of metallo beta-lactamase inhibitors.

Silvia Gervasoni1, James Spencer2, Philip Hinchliffe2, Alessandro Pedretti1, Franco Vairoletti3, Graciela Mahler3, Adrian J Mulholland4.   

Abstract

Antibiotic resistance is a major threat to global public health. β-lactamases, which catalyze breakdown of β-lactam antibiotics, are a principal cause. Metallo β-lactamases (MBLs) represent a particular challenge because they hydrolyze almost all β-lactams and to date no MBL inhibitor has been approved for clinical use. Molecular simulations can aid drug discovery, for example, predicting inhibitor complexes, but empirical molecular mechanics (MM) methods often perform poorly for metalloproteins. Here we present a multiscale approach to model thiol inhibitor binding to IMP-1, a clinically important MBL containing two catalytic zinc ions, and predict the binding mode of a 2-mercaptomethyl thiazolidine (MMTZ) inhibitor. Inhibitors were first docked into the IMP-1 active site, testing different docking programs and scoring functions on multiple crystal structures. Complexes were then subjected to molecular dynamics (MD) simulations and subsequently refined through QM/MM optimization with a density functional theory (DFT) method, B3LYP/6-31G(d), increasing the accuracy of the method with successive steps. This workflow was tested on two IMP-1:MMTZ complexes, for which it reproduced crystallographically observed binding, and applied to predict the binding mode of a third MMTZ inhibitor for which a complex structure was crystallographically intractable. We also tested a 12-6-4 nonbonded interaction model in MD simulations and optimization with a SCC-DFTB QM/MM approach. The results show the limitations of empirical models for treating these systems and indicate the need for higher level calculations, for example, DFT/MM, for reliable structural predictions. This study demonstrates a reliable computational pipeline that can be applied to inhibitor design for MBLs and other zinc-metalloenzyme systems.
© 2021 The Authors. Proteins: Structure, Function, and Bioinformatics published by Wiley Periodicals LLC.

Entities:  

Keywords:  IMP-1; MBL inhibitor; antibiotic resistance; metallo β-lactamases; metalloenzymes; thiazolidine; zinc enzymes

Mesh:

Substances:

Year:  2021        PMID: 34455628      PMCID: PMC8944931          DOI: 10.1002/prot.26227

Source DB:  PubMed          Journal:  Proteins        ISSN: 0887-3585


  78 in total

1.  Development and testing of a general amber force field.

Authors:  Junmei Wang; Romain M Wolf; James W Caldwell; Peter A Kollman; David A Case
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2.  Effects of Dispersion in Density Functional Based Quantum Mechanical/Molecular Mechanical Calculations on Cytochrome P450 Catalyzed Reactions.

Authors:  Richard Lonsdale; Jeremy N Harvey; Adrian J Mulholland
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Review 3.  IMP-type metallo-β-lactamases in Gram-negative bacilli: distribution, phylogeny, and association with integrons.

Authors:  Wei-Hua Zhao; Zhi-Qing Hu
Journal:  Crit Rev Microbiol       Date:  2011-03-29       Impact factor: 7.624

4.  SQM/COSMO Scoring Function at the DFTB3-D3H4 Level: Unique Identification of Native Protein-Ligand Poses.

Authors:  Adam Pecina; Susanta Haldar; Jindřich Fanfrlík; René Meier; Jan Řezáč; Martin Lepšík; Pavel Hobza
Journal:  J Chem Inf Model       Date:  2017-01-17       Impact factor: 4.956

5.  The Role of Active Site Flexible Loops in Catalysis and of Zinc in Conformational Stability of Bacillus cereus 569/H/9 β-Lactamase.

Authors:  Caroline Montagner; Michaël Nigen; Olivier Jacquin; Nicolas Willet; Mireille Dumoulin; Andreas Ioannis Karsisiotis; Gordon C K Roberts; Christian Damblon; Christina Redfield; André Matagne
Journal:  J Biol Chem       Date:  2016-05-27       Impact factor: 5.157

6.  Zn protein simulations including charge transfer and local polarization effects.

Authors:  Dmitri V Sakharov; Carmay Lim
Journal:  J Am Chem Soc       Date:  2005-04-06       Impact factor: 15.419

7.  Multiscale Simulations of Clavulanate Inhibition Identify the Reactive Complex in Class A β-Lactamases and Predict the Efficiency of Inhibition.

Authors:  Rubén A Fritz; Jans H Alzate-Morales; James Spencer; Adrian J Mulholland; Marc W van der Kamp
Journal:  Biochemistry       Date:  2018-06-07       Impact factor: 3.162

Review 8.  B1-Metallo-β-Lactamases: Where Do We Stand?

Authors:  Maria F Mojica; Robert A Bonomo; Walter Fast
Journal:  Curr Drug Targets       Date:  2016       Impact factor: 3.465

Review 9.  Pseudomonas aeruginosa: new insights into pathogenesis and host defenses.

Authors:  Shaan L Gellatly; Robert E W Hancock
Journal:  Pathog Dis       Date:  2013-03-15       Impact factor: 3.166

10.  QM/MM studies of monozinc β-lactamase CphA suggest that the crystal structure of an enzyme-intermediate complex represents a minor pathway.

Authors:  Shanshan Wu; Dingguo Xu; Hua Guo
Journal:  J Am Chem Soc       Date:  2010-12-07       Impact factor: 15.419

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