Cargando…

The Mycobacterial DNA Methyltransferase HsdM Decreases Intrinsic Isoniazid Susceptibility

Tuberculosis, caused by the pathogen Mycobacterium tuberculosis, is a serious infectious disease worldwide. Multidrug-resistant TB (MDR-TB) remains a global problem, and the understanding of this resistance is incomplete. Studies suggested that DNA methylation promotes bacterial adaptability to anti...

Descripción completa

Detalles Bibliográficos
Autores principales: Hu, Xinling, Zhou, Xintong, Yin, Tong, Chen, Keyu, Hu, Yongfei, Zhu, Baoli, Mi, Kaixia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8614780/
https://www.ncbi.nlm.nih.gov/pubmed/34827261
http://dx.doi.org/10.3390/antibiotics10111323
_version_ 1784603943830028288
author Hu, Xinling
Zhou, Xintong
Yin, Tong
Chen, Keyu
Hu, Yongfei
Zhu, Baoli
Mi, Kaixia
author_facet Hu, Xinling
Zhou, Xintong
Yin, Tong
Chen, Keyu
Hu, Yongfei
Zhu, Baoli
Mi, Kaixia
author_sort Hu, Xinling
collection PubMed
description Tuberculosis, caused by the pathogen Mycobacterium tuberculosis, is a serious infectious disease worldwide. Multidrug-resistant TB (MDR-TB) remains a global problem, and the understanding of this resistance is incomplete. Studies suggested that DNA methylation promotes bacterial adaptability to antibiotic treatment, but the role of mycobacterial HsdM in drug susceptibility has not been explored. Here, we constructed an inactivated Mycobacterium bovis (BCG) strain, ΔhsdM. ΔhsdM shows growth advantages over wild-type BCG under isoniazid treatment and hypoxia-induced stress. Using high-precision PacBio single-molecule real-time sequencing to compare the ΔhsdM and BCG methylomes, we identified 219 methylated HsdM substrates. Bioinformatics analysis showed that most HsdM-modified genes were enriched in respiration- and energy-related pathways. qPCR showed that HsdM-modified genes directly affected their own transcription, indicating an altered redox regulation. The use of the latent Wayne model revealed that ΔhsdM had growth advantages over wild-type BCG and that HsdM regulated trcR mRNA levels, which may be crucial in regulating transition from latency to reactivation. We found that HsdM regulated corresponding transcription levels via gene methylation; thus, altering the mycobacterial redox status and decreasing the bacterial susceptibility to isoniazid, which is closely correlated with the redox status. Our results provide valuable insight into DNA methylation on drug susceptibility.
format Online
Article
Text
id pubmed-8614780
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-86147802021-11-26 The Mycobacterial DNA Methyltransferase HsdM Decreases Intrinsic Isoniazid Susceptibility Hu, Xinling Zhou, Xintong Yin, Tong Chen, Keyu Hu, Yongfei Zhu, Baoli Mi, Kaixia Antibiotics (Basel) Article Tuberculosis, caused by the pathogen Mycobacterium tuberculosis, is a serious infectious disease worldwide. Multidrug-resistant TB (MDR-TB) remains a global problem, and the understanding of this resistance is incomplete. Studies suggested that DNA methylation promotes bacterial adaptability to antibiotic treatment, but the role of mycobacterial HsdM in drug susceptibility has not been explored. Here, we constructed an inactivated Mycobacterium bovis (BCG) strain, ΔhsdM. ΔhsdM shows growth advantages over wild-type BCG under isoniazid treatment and hypoxia-induced stress. Using high-precision PacBio single-molecule real-time sequencing to compare the ΔhsdM and BCG methylomes, we identified 219 methylated HsdM substrates. Bioinformatics analysis showed that most HsdM-modified genes were enriched in respiration- and energy-related pathways. qPCR showed that HsdM-modified genes directly affected their own transcription, indicating an altered redox regulation. The use of the latent Wayne model revealed that ΔhsdM had growth advantages over wild-type BCG and that HsdM regulated trcR mRNA levels, which may be crucial in regulating transition from latency to reactivation. We found that HsdM regulated corresponding transcription levels via gene methylation; thus, altering the mycobacterial redox status and decreasing the bacterial susceptibility to isoniazid, which is closely correlated with the redox status. Our results provide valuable insight into DNA methylation on drug susceptibility. MDPI 2021-10-29 /pmc/articles/PMC8614780/ /pubmed/34827261 http://dx.doi.org/10.3390/antibiotics10111323 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Hu, Xinling
Zhou, Xintong
Yin, Tong
Chen, Keyu
Hu, Yongfei
Zhu, Baoli
Mi, Kaixia
The Mycobacterial DNA Methyltransferase HsdM Decreases Intrinsic Isoniazid Susceptibility
title The Mycobacterial DNA Methyltransferase HsdM Decreases Intrinsic Isoniazid Susceptibility
title_full The Mycobacterial DNA Methyltransferase HsdM Decreases Intrinsic Isoniazid Susceptibility
title_fullStr The Mycobacterial DNA Methyltransferase HsdM Decreases Intrinsic Isoniazid Susceptibility
title_full_unstemmed The Mycobacterial DNA Methyltransferase HsdM Decreases Intrinsic Isoniazid Susceptibility
title_short The Mycobacterial DNA Methyltransferase HsdM Decreases Intrinsic Isoniazid Susceptibility
title_sort mycobacterial dna methyltransferase hsdm decreases intrinsic isoniazid susceptibility
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8614780/
https://www.ncbi.nlm.nih.gov/pubmed/34827261
http://dx.doi.org/10.3390/antibiotics10111323
work_keys_str_mv AT huxinling themycobacterialdnamethyltransferasehsdmdecreasesintrinsicisoniazidsusceptibility
AT zhouxintong themycobacterialdnamethyltransferasehsdmdecreasesintrinsicisoniazidsusceptibility
AT yintong themycobacterialdnamethyltransferasehsdmdecreasesintrinsicisoniazidsusceptibility
AT chenkeyu themycobacterialdnamethyltransferasehsdmdecreasesintrinsicisoniazidsusceptibility
AT huyongfei themycobacterialdnamethyltransferasehsdmdecreasesintrinsicisoniazidsusceptibility
AT zhubaoli themycobacterialdnamethyltransferasehsdmdecreasesintrinsicisoniazidsusceptibility
AT mikaixia themycobacterialdnamethyltransferasehsdmdecreasesintrinsicisoniazidsusceptibility
AT huxinling mycobacterialdnamethyltransferasehsdmdecreasesintrinsicisoniazidsusceptibility
AT zhouxintong mycobacterialdnamethyltransferasehsdmdecreasesintrinsicisoniazidsusceptibility
AT yintong mycobacterialdnamethyltransferasehsdmdecreasesintrinsicisoniazidsusceptibility
AT chenkeyu mycobacterialdnamethyltransferasehsdmdecreasesintrinsicisoniazidsusceptibility
AT huyongfei mycobacterialdnamethyltransferasehsdmdecreasesintrinsicisoniazidsusceptibility
AT zhubaoli mycobacterialdnamethyltransferasehsdmdecreasesintrinsicisoniazidsusceptibility
AT mikaixia mycobacterialdnamethyltransferasehsdmdecreasesintrinsicisoniazidsusceptibility