A novel sulfonamide resistance mechanism by two-component flavin-dependent monooxygenase system in sulfonamide-degrading actinobacteria

  • Kim, Dae-Wi; 
  • Thawng, Cung Nawl; 
  • Lee, Kihyun; 
  • Wellington, Elizabeth M.H.; 
  • Cha, Chang-Jun
Citations

WEB OF SCIENCE

93
Citations

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102

초록

Sulfonamide-degrading bacteria have been discovered in various environments, suggesting the presence of novel resistance mechanisms via drug inactivation. In this study, Microbacterium sp. CJ77 capable of utilizing various sulfonamides as a sole carbon source was isolated from a composting facility. Genome and proteome analyses revealed that a gene cluster containing a flavin-dependent monooxygenase and a flavin reductase was highly up-regulated in response to sulfonamides. Biochemical analysis showed that the two-component monooxygenase system was key enzymes for the initial cleavage of sulfonamides. Co-expression of the two-component system in Escherichia coli conferred decreased susceptibility to sulfamethoxazole, indicating that the genes encoding drug-inactivating enzymes are potential resistance determinants. Comparative genomic analysis revealed that the gene cluster containing sulfonamide monooxygenase (renamed as sulX) and flavin reductase (sulR) was highly conserved in a genomic island shared among sulfonamide-degrading actinobacteria, all of which also contained sul1-carrying class 1 integrons. These results suggest that the sulfonamide metabolism may have evolved in sulfonamide-resistant bacteria which had already acquired the class 1 integron under sulfonamide selection pressures. Furthermore, the presence of multiple insertion sequence elements and putative composite transposon structures containing the sulX gene cluster indicated potential mobilization. This is the first study to report that sulX responsible for both sulfonamide degradation and resistance is prevalent in sulfonamide-degrading actinobacteria and its genetic signatures indicate horizontal gene transfer of the novel resistance gene. © 2019

키워드

Composite transposon; Genomic island; Horizontal gene transfer; Sulfonamide degradation; Sulfonamide resistance; Amides; Biodegradation; Enzymes; Escherichia coli; Gene expression; Gene transfer; Plants (botany); Biochemical analysis; Composting facilities; Flavin-dependent monooxygenase; Genomic islands; Horizontal gene transfer; Resistance mechanisms; Selection pressures; Two component systems; Sulfur compounds; flavin dependent monooxygenase; flavin reductase; oxidoreductase; sulfamethoxazole; sulfonamide; sulfonamide monooxygenase; unclassified drug; unspecific monooxygenase; bacterium; biodegradation; drug resistance; enzyme activity; gene transfer; genomics; Actinobacteria; antibiotic resistance; Article; bacterial gene; controlled study; degradation; Escherichia coli; gene cluster; gene insertion sequence; genomic island; heterologous expression; integron; Microbacterium; nonhuman; priority journal; proteomics; sulR gene; sulX gene; transposon; Actinobacteria; Escherichia coli; Microbacterium sp.
제목
A novel sulfonamide resistance mechanism by two-component flavin-dependent monooxygenase system in sulfonamide-degrading actinobacteria
저자
Kim, Dae-Wi; Thawng, Cung Nawl; Lee, Kihyun; Wellington, Elizabeth M.H.; Cha, Chang-Jun
DOI
10.1016/j.envint.2019.03.046
발행일
2019-06
유형
Article
저널명
Environment International
권
127
페이지
206 ~ 215

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