N-methylation of a bactericidal compound as a resistance mechanism in Mycobacterium tuberculosis Journal Article


Authors: Warrier, T.; Kapilashrami, K.; Argyrou, A.; Ioerger, T. R.; Little, D.; Murphye, K. C.; Nandakumar, M.; Park, S.; Gold, B.; Mi, J.; Zhang, T.; Meiler, E.; Rees, M.; Somersan-Karakaya, S.; Francisco, E. P. D.; Martinez-Hoyos, M.; Burns-Huang, K.; Roberts, J.; Ling, Y.; Rhee, K. Y.; Mendoza-Losana, A.; Luo, M.; Nathan, C. F.
Article Title: N-methylation of a bactericidal compound as a resistance mechanism in Mycobacterium tuberculosis
Abstract: The rising incidence of antimicrobial resistance (AMR) makes it imperative to understand the underlying mechanisms. Mycobacterium tuberculosis (Mtb) is the single leading cause of death from a bacterial pathogen and estimated to be the leading cause of death from AMR. A pyrido-benzimidazole, 14, was reported to have potent bactericidal activity against Mtb. Here, we isolated multiple Mtb clones resistant to 14. Each had mutations in the putative DNA-binding and dimerization domains of rv2887, a gene encoding a transcriptional repressor of the MarR family. The mutations in Rv2887 led to markedly increased expression of rv0560c. We characterized Rv0560c as an S-Adenosyl-Lmethionine-dependent methyltransferase that N-methylates 14, abolishing its mycobactericidal activity. An Mtb strain lacking rv0560c became resistant to 14 by mutating decaprenylphosphoryl-β-D-ribose 2-oxidase (DprE1), an essential enzyme in arabinogalactan synthesis; 14 proved to be a nanomolar inhibitor of DprE1, and methylation of 14 by Rv0560c abrogated this activity. Thus, 14 joins a growing list of DprE1 inhibitors that are potently mycobactericidal. Bacterial methylation of an antibacterial agent, 14, catalyzed by Rv0560c of Mtb, is a previously unreported mechanism of AMR.
Journal Title: Proceedings of the National Academy of Sciences of the United States of America
Volume: 113
Issue: 31
ISSN: 0027-8424
Publisher: National Academy of Sciences  
Date Published: 2016-08-02
Start Page: E4523
End Page: E4530
Language: English
DOI: 10.1073/pnas.1606590113
PROVIDER: scopus
PMCID: PMC4978242
PUBMED: 27432954
DOI/URL:
Notes: Conference Paper -- Export Date: 1 September 2016 -- Source: Scopus
Altmetric
Citation Impact
BMJ Impact Analytics
MSK Authors
  1. Minkui Luo
    70 Luo