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Updated: Jan 9, 2026

Quantification of Plasmid-Mediated Antibiotic Resistance in an Experimental Evolution Approach
Published on: December 14, 2019
Understanding the Association of Plasmid Incompatibility Groups With Variable Antimicrobial Resistance Genotypes in
Hannay Crystynah Almeida de Souza1,2,3, Pedro Panzenhagen3, Anamaria Mota Pereira Dos Santos1,2,4
1Center for Food Analysis (NAL), Technological Development Support Laboratory (LADETEC), Federal University of Rio de Janeiro (UFRJ), Cidade Universitária, Rio de Janeiro, Brazil.
Abstract:
Plasmids play an essential role in the spread of antimicrobial resistance (AMR) by facilitating the horizontal transfer of resistance genes between bacterial environments. However, large-scale investigations into the association between plasmid incompatibility groups (Inc groups) and specific resistance profiles remain limited. In this study, we analyzed 28,047 plasmid sequences from publicly available whole-genome sequencing data sets, identifying incompatibility groups in 11,288 plasmids using in silico replicon typing. Our results revealed that the majority of plasmids harbored a single replicon, while a substantial fraction carried multiple replicons, predominantly two. We evaluated the relationship between plasmid replicon spillovers and their role in the spread of resistance genes. Our results revealed that plasmids with five replicons have a significantly higher resistance potential (60%) compared to plasmids with fewer replicons, decreasing their adaptability and propensity for cointegration, which facilitates horizontal gene transfer. Among the resistance-associated plasmids, the IncF, IncI, and IncH families were predominant and acted as effective carriers of resistance genes. Comparative analyses between resistant and non-resistant plasmids did not reveal a clear visual pattern of association between the most prevalent Inc groups and specific antimicrobial classes, indicating that such relationships are shaped by contextual factors, including selective instructions, bacterial host diversity, and distribution. These findings highlight the complexity of the spread of plasmid-mediated AMR and highlight the need for integrated genomic and epidemiological approaches to better understand the ecological and evolutionary dynamics that influence the spread of resistance genes.
Insights
Plasmids significantly contribute to antimicrobial resistance (AMR) spread. This study found that plasmids with more replicons, particularly five, show higher resistance potential, complicating AMR control strategies.
Area of Science:
- Microbiology
- Genomics
- Epidemiology
Background:
- Plasmids are key drivers of antimicrobial resistance (AMR) gene dissemination via horizontal gene transfer.
- Large-scale data on plasmid incompatibility groups (Inc groups) and resistance profiles are limited.
Purpose of the Study:
- To investigate the association between plasmid Inc groups and AMR profiles using large-scale genomic data.
- To evaluate the role of plasmid replicons in the spread of resistance genes.
Main Methods:
- Analysis of 28,047 plasmid sequences from public whole-genome sequencing data.
- In silico replicon typing to identify incompatibility groups in 11,288 plasmids.
- Comparative analysis of resistance profiles between plasmids with varying replicon numbers.
Main Results:
- Most plasmids had one or two replicons; multiple replicons were common.
- Plasmids with five replicons exhibited significantly higher resistance potential (60%).
- IncF, IncI, and IncH families were predominant carriers of resistance genes, but no clear Inc group-specific resistance pattern emerged.
Conclusions:
- Plasmid replicon number influences resistance gene carriage and horizontal gene transfer.
- AMR gene association with specific Inc groups is context-dependent.
- Integrated genomic and epidemiological approaches are crucial for understanding AMR dynamics.
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