ArticleNature communications2025
Methionine-driven methylation modification overcomes plasmid-mediated high-level tigecycline resistance.
Article in Nature communications, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 16 papers.
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Who cites it
16 citing papers in PubMed.
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- 3‑Methylthiopropionic Acid Kills Carbapenem-ResistantJACS Au · 2026Article
- KPC-2 Orchestrates Systemic Metabolic Rewiring to Facilitate Antibiotic Adaptation inMicroorganisms · 2026Article
- Dietary regulation on gut resistome linked with microbial amino acid metabolism in pigs.Animal microbiome · 2026Article
- Drug-resistant Escherichia coli metabolomics via pseudo-targeted SWATH/IDA-MRM: Bridging high coverage and precision.Journal of advanced research · 2026Article
- Amikacin-eravacycline combination mediates the synergistic elimination of carbapenem-resistant pathogens via in vitro and in vivo metabolic reprogramming.PLoS pathogens · 2026Article
- Epigenetic regulation and antimicrobial resistance: functional roles of DNA methylation.FEMS microbiology reviews · 2026Review
- Serum proteomic profiling of sepsis patients reveals a protein-based diagnostic model, with metabolomic insights into carbapenem-resistantFrontiers in immunology · 2026Article
- Inosine monophosphate overcomes the coexisting resistance of mcr-1 and blaJournal of advanced research · 2026Article
- The acetyltransferase CysE modulates virulence and drug resistance of Mycobacterium tuberculosis by interfering with oxidative stress responses.Communications biology · 2025Article
- Evaluation of the Efficacy of Metformin in the Treatment of Acne Vulgaris and Its Effects on Serum Lipid Metabolism.Journal of cosmetic dermatology · 2025Article
- Genomic and metabonomic insights into the lignin-degrading potential of a novel halophilic bacterial strain Salinicoccus sp. HZC-1.BMC genomics · 2025Article
- Metabolism-dependent succinylation governs resource allocation for antibiotic resistance.Science advances · 2025Article
- Resistance Response and Regulatory Mechanisms of Ciprofloxacin-Induced ResistantAntibiotics (Basel, Switzerland) · 2025Article
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Authors and funding
9 authors.
Funding
Abstract
Tigecycline is a last-resort antibiotic to treat complicated infections caused by multidrug-resistant pathogens, while the emergence of plasmid-mediated tet(X) family severely compromises its clinical efficacy. Novel antimicrobial strategies not limited to new antibiotics in pharmaceutical pipeline are urgently needed. Herein, we reveal the metabolic disparities between tet(X)-negative and -positive E. coli, including distinct energy demand patterns under tigecycline exposure. In particular, the cysteine and methionine metabolism pathway is remarkably downregulated in tet(X)-positive bacteria. More importantly, we find that the addition of exogenous L-methionine (Met) effectively resensitizes tet(X)-positive pathogens to tigecycline. Our mechanistic analysis demonstrates that exogenous Met promotes intracellular tigecycline accumulation by upregulating bacterial proton motive force. Moreover, Met accelerates the conversion to S-adenosyl-L-methionine, an essential methyl donor, thereby enhancing 5mC methylation modification in the promoter region of tet(X4) gene and reducing its expression. Consistently, the potentiation of Met to tigecycline is abolished in tet(X4)-carrying E. coli Δdcm but restored in dcm-complementary bacteria, which encodes DNA-cytosine methyltransferase. In multiple animal models of infection, Met markedly potentiates the effectiveness of tigecycline against pathogenic E. coli and K. pneumoniae. Overall, this work highlights the therapeutic potential of Met in overcoming plasmid-mediated high-level tigecycline resistance, and provides a new paradigm to enhance antibiotic efficacy by harnessing cellular metabolic networks as well as epigenetic modifications.
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