Search bioRxiv⌕ Search

bioRxiv · 10.1101/2025.08.26.672393

Mycobacterium tuberculosis m4C DNA methyltransferase Rv3204 promotes mycobacteria survival under oxidative stress

Abstract

Reactive oxygen species (ROS) inflict cellular damage yet are pivotal mediators of signaling pathways. Mycobacterium tuberculosis (Mtb), the causative agent of tuberculosis (TB), persists as a major global health threat, partly due to its capacity to neutralize host-derived ROS toxicity. While DNA methylation deficiency is known to attenuate Mtb virulence, the specific role of DNA methyltransferases in mycobacterial survival under oxidative stress remains poorly defined. Here, we demonstrate that the mycobacterial protein Rv3204 functions as an N4-methylcytosine (m4C) DNA methyltransferase. Deletion of the Rv3204 homolog (Ms_1939) in Mycobacterium smegmatis significantly impaired bacterial survival upon rifampicin exposure. This phenotype was associated with heightened intracellular ROS accumulation and a failure to upregulate transcription of ROS detoxification genes. Furthermore, the mutant exhibited downregulated expression of DNA repair genes and increased susceptibility to fluoroquinolone antibiotics (norfloxacin, ofloxacin). Crucially, the Ms_1939 deletion strain displayed elevated levels of DNA damage. To our knowledge, this is the first study establishing a direct link between an m4C DNA methyltransferase and ROS homeostasis in mycobacteria. Our findings identify Rv3204 as a potential novel therapeutic target for modulating ROS sensitivity in M. tuberculosis. ImportanceMycobacterium tuberculosis, the causative agent of tuberculosis, remains a major global health threat due in part to its ability to withstand host-derived oxidative stress. This study identifies Rv3204 as a novel N4-methylcytosine DNA methyltransferase essential for mycobacterial survival under oxidative stress. We demonstrate that deletion of Rv3204 homolog in M. smegmatis leads to elevated intracellular ROS, impaired transcriptional activation of antioxidant and DNA repair genes, increased DNA damage, and heightened susceptibility to fluoroquinolone antibiotics. Our findings establish a critical link between epigenetic regulation via m4C methylation and ROS homeostasis in mycobacteria--a relationship previously unexplored. This work not only advances our understanding of bacterial epigenetic mechanisms in stress adaptation but also positions Rv3204 as a promising target for novel anti-tuberculosis strategies aimed at disrupting redox balance and enhancing antibiotic efficacy. DATA summaryRaw data files have been deposited in the National Center for Biotechnology Information (NCBI) Gene Expression Omnibus (GEO) under accession number GSE139646 (https://www.ncbi.nlm.nih.gov/geo/query/acc.cgi?acc=GSE139646).

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Abudukadier, A., Xie, J., Zhang, Q., Gong, Z., Li, P., Chen, H., Zhang, L., Niu, J.. 2025-08-27. Mycobacterium tuberculosis m4C DNA methyltransferase Rv3204 promotes mycobacteria survival under oxidative stress. https://doi.org/10.1101/2025.08.26.672393

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related preprints

Large language model-based bibliometric evaluation of population descriptors in human genetics

As the use of population descriptors such as race, ethnicity, and ancestry have become increasingly common in modern genetics research, there have been growing calls to critically examine their use. Most notably, in 2023, the National Academies of Science, Engineering, and Medicine (NASEM) published a report titled Using Population Descriptors in Genetics and Genomics Research: A New Framework for an Evolving Field, which included eight specific and actionable recommendations for researchers to implement the ethical and accurate use of population descriptors in genetic research. Here, we use the 2023 NASEM report as a benchmark to analyze the use of population descriptors in genome-wide association studies (GWAS). We develop a general toolkit for large language model-based bibliometrics, operationalize the report's recommendations into an evaluation framework, and apply this framework to evaluate all 4,007 papers from the GWAS Catalog published between 2007 and 2025 with full text available on PubMedCentral. We find significant improvements in adherence to NASEM report recommendations over time. However, most improvements predate the publication of the NASEM report itself, suggesting the report functioned primarily as a synthesis of existing best practices rather than a catalyst for change. We conclude by highlighting opportunities for growth in the field of human genetics.

genetics↗

Mitigating biases of rescaling in forward-in-time population genetic simulations

Forward-in-time population genetic simulations are widely used in evolutionary analyses, but simulating large populations and long genomic regions remains computationally demanding. To reduce this cost, parameter rescaling is widely employed, in which the original evolutionary process is approximated by one with a smaller population size and fewer generations. Recently, several studies using the SLiM simulator have raised concerns about the accuracy of this rescaling approach. In this study, we show that many of the biases reported in these studies can be mitigated by using a different simulation algorithm. These results reveal that the accuracy of parameter rescaling depends on how well the simulation algorithm preserves diffusion-limit properties under rescaling.

genetics↗

OPA1 controls mitochondrial dysfunction-driven liver fibrosis in MASLD

Progressive hepatic fibrosis is the principal determinant of morbidity and mortality in metabolic dysfunction-associated steatotic liver disease and steatohepatitis (MASLD/MASH). Mitochondrial dysfunction is a hallmark of MASH, and the release of mitochondrial damage-associated molecular patterns (mito-DAMPs) from injured hepatocytes can promote fibrosis. However, how mitochondrial dynamics and quality control shape the fibrotic response in MASLD/MASH remains unclear. Here, through large-scale genomic analyses of mitochondrial genes governing mitophagy, fusion and fission in human MASLD, with a power-equivalent sample size of approximately 700,000 individuals, we identify a strong association between hepatic fibrosis and the mitochondrial fusion factor dynamin-like GTPase optic atrophy 1 (OPA1). OPA1 transcripts and protein abundance in the liver epithelium were progressively dysregulated with advancing fibrosis. In mice, hepatocyte-specific OPA1 loss alone was sufficient to induce hepatic stellate cell activation and fibrosis in zone 3, promoted the release of mito-DAMPs into the circulation and exacerbated fibrosis in experimental MASH. These findings identify OPA1 as a central regulator of the hepatic fibrotic response and connect defective mitochondrial homeostasis to mito-DAMP release, hepatic stellate cell activation and fibrosis in MASLD.

genetics↗