Cargando…

A computational perspective on the dynamic behaviour of recurrent drug resistance mutations in the pncA gene from Mycobacterium tuberculosis

Tuberculosis is still one of the top 10 causes of death worldwide, particularly with the emergence of multidrug-resistant tuberculosis. As the most effective first-line anti-tuberculosis drug, pyrazinamide also develops resistance due to the mutation in the pncA gene. Among these mutations, seven mu...

Descripción completa

Detalles Bibliográficos
Autores principales: Khan, Taimoor, Khan, Abbas, Ali, Syed Shujait, Ali, Shahid, Wei, Dong-Qing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8693711/
https://www.ncbi.nlm.nih.gov/pubmed/35424144
http://dx.doi.org/10.1039/d0ra09326b
_version_ 1784619199552815104
author Khan, Taimoor
Khan, Abbas
Ali, Syed Shujait
Ali, Shahid
Wei, Dong-Qing
author_facet Khan, Taimoor
Khan, Abbas
Ali, Syed Shujait
Ali, Shahid
Wei, Dong-Qing
author_sort Khan, Taimoor
collection PubMed
description Tuberculosis is still one of the top 10 causes of death worldwide, particularly with the emergence of multidrug-resistant tuberculosis. As the most effective first-line anti-tuberculosis drug, pyrazinamide also develops resistance due to the mutation in the pncA gene. Among these mutations, seven mutations at positions F94L, F94S, K96N, K96R, G97C, G97D, and G97S are classified as high-level resistance mutations. However, the resistance mechanism of Mtb to PZA (pyrazinamide) caused by these mutations is still unclear. In this work, we combined molecular dynamics simulation, molecular mechanics/generalized-Born surface area calculation, principal component analysis, and free energy landscape analysis to explore the resistance mechanism of Mtb to PZA due to F94L, F94S, K96N, K96R, G97C, G97D, and G97S mutations, as well as compare interaction changes in wild-type and mutant PZA-bound complexes. The results of molecular mechanics/generalized-Born surface area calculations indicated that the binding free energy of PZA with seven mutants decreased. In mutant systems, the most significant interactions with His137 and Cys138 were lost. Besides, PCA and FEL confirmed significant variations in the protein dynamics during the simulation specifically by altering the Fe(2+) binding and its destabilization. Furthermore, mutants also flipped the β-sheet 2, which also affects the binding of Fe(2+) and PZA. In the G97D mutant, reported as most lethal, mutation causes the binding pocket to change considerably, so that the position of PZA has a large movement in the binding pocket. In this study, the resistance mechanism of PZA at the atomic level is proposed. The proposed drug-resistance mechanism will provide valuable guidance for the design of anti-tuberculosis drugs.
format Online
Article
Text
id pubmed-8693711
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-86937112022-04-13 A computational perspective on the dynamic behaviour of recurrent drug resistance mutations in the pncA gene from Mycobacterium tuberculosis Khan, Taimoor Khan, Abbas Ali, Syed Shujait Ali, Shahid Wei, Dong-Qing RSC Adv Chemistry Tuberculosis is still one of the top 10 causes of death worldwide, particularly with the emergence of multidrug-resistant tuberculosis. As the most effective first-line anti-tuberculosis drug, pyrazinamide also develops resistance due to the mutation in the pncA gene. Among these mutations, seven mutations at positions F94L, F94S, K96N, K96R, G97C, G97D, and G97S are classified as high-level resistance mutations. However, the resistance mechanism of Mtb to PZA (pyrazinamide) caused by these mutations is still unclear. In this work, we combined molecular dynamics simulation, molecular mechanics/generalized-Born surface area calculation, principal component analysis, and free energy landscape analysis to explore the resistance mechanism of Mtb to PZA due to F94L, F94S, K96N, K96R, G97C, G97D, and G97S mutations, as well as compare interaction changes in wild-type and mutant PZA-bound complexes. The results of molecular mechanics/generalized-Born surface area calculations indicated that the binding free energy of PZA with seven mutants decreased. In mutant systems, the most significant interactions with His137 and Cys138 were lost. Besides, PCA and FEL confirmed significant variations in the protein dynamics during the simulation specifically by altering the Fe(2+) binding and its destabilization. Furthermore, mutants also flipped the β-sheet 2, which also affects the binding of Fe(2+) and PZA. In the G97D mutant, reported as most lethal, mutation causes the binding pocket to change considerably, so that the position of PZA has a large movement in the binding pocket. In this study, the resistance mechanism of PZA at the atomic level is proposed. The proposed drug-resistance mechanism will provide valuable guidance for the design of anti-tuberculosis drugs. The Royal Society of Chemistry 2021-01-11 /pmc/articles/PMC8693711/ /pubmed/35424144 http://dx.doi.org/10.1039/d0ra09326b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Khan, Taimoor
Khan, Abbas
Ali, Syed Shujait
Ali, Shahid
Wei, Dong-Qing
A computational perspective on the dynamic behaviour of recurrent drug resistance mutations in the pncA gene from Mycobacterium tuberculosis
title A computational perspective on the dynamic behaviour of recurrent drug resistance mutations in the pncA gene from Mycobacterium tuberculosis
title_full A computational perspective on the dynamic behaviour of recurrent drug resistance mutations in the pncA gene from Mycobacterium tuberculosis
title_fullStr A computational perspective on the dynamic behaviour of recurrent drug resistance mutations in the pncA gene from Mycobacterium tuberculosis
title_full_unstemmed A computational perspective on the dynamic behaviour of recurrent drug resistance mutations in the pncA gene from Mycobacterium tuberculosis
title_short A computational perspective on the dynamic behaviour of recurrent drug resistance mutations in the pncA gene from Mycobacterium tuberculosis
title_sort computational perspective on the dynamic behaviour of recurrent drug resistance mutations in the pnca gene from mycobacterium tuberculosis
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8693711/
https://www.ncbi.nlm.nih.gov/pubmed/35424144
http://dx.doi.org/10.1039/d0ra09326b
work_keys_str_mv AT khantaimoor acomputationalperspectiveonthedynamicbehaviourofrecurrentdrugresistancemutationsinthepncagenefrommycobacteriumtuberculosis
AT khanabbas acomputationalperspectiveonthedynamicbehaviourofrecurrentdrugresistancemutationsinthepncagenefrommycobacteriumtuberculosis
AT alisyedshujait acomputationalperspectiveonthedynamicbehaviourofrecurrentdrugresistancemutationsinthepncagenefrommycobacteriumtuberculosis
AT alishahid acomputationalperspectiveonthedynamicbehaviourofrecurrentdrugresistancemutationsinthepncagenefrommycobacteriumtuberculosis
AT weidongqing acomputationalperspectiveonthedynamicbehaviourofrecurrentdrugresistancemutationsinthepncagenefrommycobacteriumtuberculosis
AT khantaimoor computationalperspectiveonthedynamicbehaviourofrecurrentdrugresistancemutationsinthepncagenefrommycobacteriumtuberculosis
AT khanabbas computationalperspectiveonthedynamicbehaviourofrecurrentdrugresistancemutationsinthepncagenefrommycobacteriumtuberculosis
AT alisyedshujait computationalperspectiveonthedynamicbehaviourofrecurrentdrugresistancemutationsinthepncagenefrommycobacteriumtuberculosis
AT alishahid computationalperspectiveonthedynamicbehaviourofrecurrentdrugresistancemutationsinthepncagenefrommycobacteriumtuberculosis
AT weidongqing computationalperspectiveonthedynamicbehaviourofrecurrentdrugresistancemutationsinthepncagenefrommycobacteriumtuberculosis