Examining the role of protein structural dynamics in drug resistance in Mycobacterium tuberculosis
Shaw, Daniel J. and Hill, Rachel E. and Simpson, Niall and Husseini, Fouad S. and Robb, Kirsty and Greetham, Gregory M. and Towrie, Michael and Parker, Anthony W. and Robinson, David and Hirst, Jonathan D. and Hoskisson, Paul A. and Hunt, Neil T. (2017) Examining the role of protein structural dynamics in drug resistance in Mycobacterium tuberculosis. Chemical Science, 8 (12). pp. 8384-8399. ISSN 2041-6539 (https://doi.org/10.1039/C7SC03336B)
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Abstract
Antimicrobial resistance represents a growing global health problem. The emergence of novel resistance mechanisms necessitates the development of alternative approaches to investigate the molecular fundamentals of resistance, leading ultimately to new strategies for counteracting them. To gain deeper insight into antibiotic-target interactions, the binding of the frontline anti-tuberculosis drug isoniazid (INH) to a target enzyme, InhA, from Mycobacterium tuberculosis was studied using ultrafast two-dimensional infrared (2D-IR) spectroscopy and molecular simulations. Comparing wild-type InhA with a series of single point mutations, it was found that binding of the INH-NAD inhibitor to susceptible forms of the enzyme increased the vibrational coupling between residues located in the Rossmann fold co-factor binding site of InhA and suppressed dynamic fluctuations of the enzyme structure. The effect correlated with biochemical assay data, being reduced in the INHresistant S94A mutant and absent in the biochemically-inactive P193A control. Molecular dynamics simulations and calculations of inter-residue couplings indicate that the changes in coupling and dynamics are not localised to the co-factor binding site, but permeate much of the protein. We thus propose that the resistant S94A mutation circumvents subtle changes in global structural dynamics caused by INH upon binding to the wild-type enzyme that may impact upon the formation of important protein-protein complexes in the fatty acid synthase pathway of M. tuberculosis.
ORCID iDs
Shaw, Daniel J., Hill, Rachel E., Simpson, Niall ORCID: https://orcid.org/0000-0003-3139-472X, Husseini, Fouad S., Robb, Kirsty ORCID: https://orcid.org/0000-0002-7388-9782, Greetham, Gregory M., Towrie, Michael, Parker, Anthony W., Robinson, David, Hirst, Jonathan D., Hoskisson, Paul A. ORCID: https://orcid.org/0000-0003-4332-1640 and Hunt, Neil T. ORCID: https://orcid.org/0000-0001-7400-5152;-
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Item type: Article ID code: 62075 Dates: DateEvent1 December 2017Published16 October 2017Published Online16 October 2017AcceptedSubjects: Science > Chemistry Department: Faculty of Science > Physics
Faculty of Science > Strathclyde Institute of Pharmacy and Biomedical Sciences
Technology and Innovation Centre > Bionanotechnology
Strategic Research Themes > Health and WellbeingDepositing user: Pure Administrator Date deposited: 18 Oct 2017 11:31 Last modified: 21 Nov 2024 01:13 Related URLs: URI: https://strathprints.strath.ac.uk/id/eprint/62075