Development of pVCR94ΔX from Vibrio cholerae, a prototype for studying multidrug resistant IncA/C conjugative plasmids
Разработка pVCR94ΔX из Vibrio cholerae — прототипа для изучения конъюгативных плазмид IncA/C с множественной лекарственной устойчивостью
2014-01-01
SCID: 54.1/vrw9hwtg
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IncA/C conjugative plasmidsVibrio choleraemultidrug resistanceorigin of transfer (oriT)pVCR94ΔX
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Abstract (AI)
Antibiotic resistance has grown steadily in Vibrio cholerae over the last few decades to become a major threat in countries affected by cholera. Multi-drug resistance (MDR) spreads among clinical and environmental V. cholerae strains by lateral gene transfer often mediated by integrative and conjugative elements (ICEs) of the SXT/R391 family. However, in a few reported but seemingly isolated cases, MDR in V. cholerae was shown to be associated with other self-transmissible genetic elements such as conjugative plasmids. IncA/C conjugative plasmids are often found associated with MDR in isolates of Enterobacteriaceae. To date, IncA/C plasmids have not been commonly found in V. cholerae or other species of Vibrio. Here we present a detailed analysis of pVCR94ΔX derived from pVCR94, a novel IncA/C conjugative plasmid identified in a V. cholerae clinical strain isolated during the 1994 Rwandan cholera outbreak. pVCR94 was found to confer resistance to sulfamethoxazole, trimethoprim, ampicillin, streptomycin, tetracycline, and chloramphenicol and to transfer at very high frequency. Sequence analysis revealed its mosaic nature as well as high similarity of the core genes responsible for transfer and maintenance with other IncA/C plasmids and ICEs of the SXT/R391 family. Although IncA/C plasmids are considered a major threat in antibiotics resistance, their basic biology has received little attention, mostly because of the difficulty to genetically manipulate these MDR conferring elements. Therefore, we developed a convenient derivative from pVCR94, pVCR94Δ X, a 120.5-kb conjugative plasmid which only codes for sulfamethoxazole resistance. Using pVCR94Δ X, we identified the origin of transfer (oriT) and discovered an essential gene for transfer, both located within the shared backbone, allowing for an annotation update of all IncA/C plasmids. pVCR94Δ X may be a useful model that will provide new insights on the basic biology of IncA/C conjugative plasmids.
Key Findings
1
Sequence analysis showed that pVCR94 is mosaic, while its transfer and maintenance genes closely resemble those of other IncA/C plasmids and SXT/R391 ICEs.
2
The researchers developed pVCR94ΔX, a genetically tractable 120.5-kb conjugative derivative encoding only sulfamethoxazole resistance.
3
Using pVCR94ΔX, they identified the origin of transfer and an essential transfer gene within the shared IncA/C backbone, enabling updated annotation of IncA/C plasmids.
4
pVCR94 conferred resistance to sulfamethoxazole, trimethoprim, ampicillin, streptomycin, tetracycline, and chloramphenicol, and transferred at very high frequency.
5
pVCR94 is a novel IncA/C conjugative plasmid identified in a V. cholerae clinical isolate from the 1994 Rwandan cholera outbreak.
Research Object
pVCR94ΔX, a 120.5-kb IncA/C conjugative plasmid derived from pVCR94 of Vibrio cholerae
Research Subject
the basic biology of IncA/C conjugative plasmids, including transfer mechanisms, the origin of transfer (oriT), and essential transfer genes
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2014-01-01
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