Uncovering the Resistance Mechanism of Mycobacterium tuberculosis to Rifampicin Due to RNA Polymerase H451D/Y/R Mutations From Computational Perspective

Tuberculosis is still one of the top 10 causes of deaths worldwide, especially with the emergence of multidrug-resistant tuberculosis. Rifampicin, as the most effective first-line antituberculosis drug, also develops resistance due to the mutation on Mycobacterium tuberculosis (Mtb) RNA polymerase....

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Main Authors: Qianqian Zhang, Xiaoli An, Hongli Liu, Shuo Wang, Tong Xiao, Huanxiang Liu
Format: Article
Language:English
Published: Frontiers Media S.A. 2019-12-01
Series:Frontiers in Chemistry
Subjects:
Online Access:https://www.frontiersin.org/article/10.3389/fchem.2019.00819/full
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spelling doaj-94fb63e66fd046069114bfd3462080822020-11-25T01:47:58ZengFrontiers Media S.A.Frontiers in Chemistry2296-26462019-12-01710.3389/fchem.2019.00819483984Uncovering the Resistance Mechanism of Mycobacterium tuberculosis to Rifampicin Due to RNA Polymerase H451D/Y/R Mutations From Computational PerspectiveQianqian Zhang0Xiaoli An1Hongli Liu2Shuo Wang3Tong Xiao4Huanxiang Liu5School of Pharmacy, Lanzhou University, Lanzhou, ChinaState Key Laboratory of Applied Organic Chemistry and Department of Chemistry, Lanzhou University, Lanzhou, ChinaSchool of Pharmacy, Lanzhou University, Lanzhou, ChinaSchool of Pharmacy, Lanzhou University, Lanzhou, ChinaSchool of Pharmacy, Lanzhou University, Lanzhou, ChinaSchool of Pharmacy, Lanzhou University, Lanzhou, ChinaTuberculosis is still one of the top 10 causes of deaths worldwide, especially with the emergence of multidrug-resistant tuberculosis. Rifampicin, as the most effective first-line antituberculosis drug, also develops resistance due to the mutation on Mycobacterium tuberculosis (Mtb) RNA polymerase. Among these mutations, three mutations at position 451 (H451D, H451Y, H451R) are associated with high-level resistance to rifampicin. However, the resistance mechanism of Mtb to rifampicin is still unclear. In this work, to explore the resistance mechanism of Mtb to rifampicin due to H451D/Y/R mutations, we combined the molecular dynamics simulation, molecular mechanics generalized-Born surface area calculation, dynamic network analysis, and residue interactions network analysis to compare the interaction change of rifampicin with wild-type RNA polymerase and three mutants. The results of molecular mechanics generalized-Born surface area calculations indicate that the binding free energy of rifampicin with three mutants decreases. In addition, the dynamic network analysis and residue interaction network analysis show that when H451 was mutated, the interactions of residue 451 with its adjacent residues such as Q438, F439, M440, D441, and S447 disappeared or weakened, increasing the flexibility of binding pocket. At the same time, the disappearance of hydrogen bonds between R613 and rifampicin caused by the flipping of R613 is another important reason for the reduction of binding ability of rifampicin in H451D/Y mutants. In H451R mutant, the mutation causes the binding pocket change too much so that the position of rifampicin has a large movement in the binding pocket. In this study, the resistance mechanism of rifampicin at the atomic level is proposed. The proposed drug-resistance mechanism will provide the valuable guidance for the design of antituberculosis drugs.https://www.frontiersin.org/article/10.3389/fchem.2019.00819/fulltuberculosisrifampicindrug resistancemolecular dynamics simulationmolecular mechanics generalized-Born surface areadynamic network analysis
collection DOAJ
language English
format Article
sources DOAJ
author Qianqian Zhang
Xiaoli An
Hongli Liu
Shuo Wang
Tong Xiao
Huanxiang Liu
spellingShingle Qianqian Zhang
Xiaoli An
Hongli Liu
Shuo Wang
Tong Xiao
Huanxiang Liu
Uncovering the Resistance Mechanism of Mycobacterium tuberculosis to Rifampicin Due to RNA Polymerase H451D/Y/R Mutations From Computational Perspective
Frontiers in Chemistry
tuberculosis
rifampicin
drug resistance
molecular dynamics simulation
molecular mechanics generalized-Born surface area
dynamic network analysis
author_facet Qianqian Zhang
Xiaoli An
Hongli Liu
Shuo Wang
Tong Xiao
Huanxiang Liu
author_sort Qianqian Zhang
title Uncovering the Resistance Mechanism of Mycobacterium tuberculosis to Rifampicin Due to RNA Polymerase H451D/Y/R Mutations From Computational Perspective
title_short Uncovering the Resistance Mechanism of Mycobacterium tuberculosis to Rifampicin Due to RNA Polymerase H451D/Y/R Mutations From Computational Perspective
title_full Uncovering the Resistance Mechanism of Mycobacterium tuberculosis to Rifampicin Due to RNA Polymerase H451D/Y/R Mutations From Computational Perspective
title_fullStr Uncovering the Resistance Mechanism of Mycobacterium tuberculosis to Rifampicin Due to RNA Polymerase H451D/Y/R Mutations From Computational Perspective
title_full_unstemmed Uncovering the Resistance Mechanism of Mycobacterium tuberculosis to Rifampicin Due to RNA Polymerase H451D/Y/R Mutations From Computational Perspective
title_sort uncovering the resistance mechanism of mycobacterium tuberculosis to rifampicin due to rna polymerase h451d/y/r mutations from computational perspective
publisher Frontiers Media S.A.
series Frontiers in Chemistry
issn 2296-2646
publishDate 2019-12-01
description Tuberculosis is still one of the top 10 causes of deaths worldwide, especially with the emergence of multidrug-resistant tuberculosis. Rifampicin, as the most effective first-line antituberculosis drug, also develops resistance due to the mutation on Mycobacterium tuberculosis (Mtb) RNA polymerase. Among these mutations, three mutations at position 451 (H451D, H451Y, H451R) are associated with high-level resistance to rifampicin. However, the resistance mechanism of Mtb to rifampicin is still unclear. In this work, to explore the resistance mechanism of Mtb to rifampicin due to H451D/Y/R mutations, we combined the molecular dynamics simulation, molecular mechanics generalized-Born surface area calculation, dynamic network analysis, and residue interactions network analysis to compare the interaction change of rifampicin with wild-type RNA polymerase and three mutants. The results of molecular mechanics generalized-Born surface area calculations indicate that the binding free energy of rifampicin with three mutants decreases. In addition, the dynamic network analysis and residue interaction network analysis show that when H451 was mutated, the interactions of residue 451 with its adjacent residues such as Q438, F439, M440, D441, and S447 disappeared or weakened, increasing the flexibility of binding pocket. At the same time, the disappearance of hydrogen bonds between R613 and rifampicin caused by the flipping of R613 is another important reason for the reduction of binding ability of rifampicin in H451D/Y mutants. In H451R mutant, the mutation causes the binding pocket change too much so that the position of rifampicin has a large movement in the binding pocket. In this study, the resistance mechanism of rifampicin at the atomic level is proposed. The proposed drug-resistance mechanism will provide the valuable guidance for the design of antituberculosis drugs.
topic tuberculosis
rifampicin
drug resistance
molecular dynamics simulation
molecular mechanics generalized-Born surface area
dynamic network analysis
url https://www.frontiersin.org/article/10.3389/fchem.2019.00819/full
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