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Updated: Aug 6, 2026

Quantification of Plasmid-Mediated Antibiotic Resistance in an Experimental Evolution Approach
Published on: December 14, 2019
Plasmid-mediated antimicrobial resistance across One Health sectors: transmission dynamics and surveillance needs
Nuha Fairusya1,2, Rongxuan Wang3, Ryo Honda3,4
1Graduate School of Natural Science and Technology, Kanazawa University, Kanazawa, Japan.
Abstract:
Antimicrobial resistance (AMR) is increasingly recognized as a One Health challenge driven by the continuous exchange of resistant bacteria and resistance determinants across human, animal, and environmental sectors. While genomic surveillance has substantially improved detection of antimicrobial resistance genes (ARGs), most monitoring frameworks remain gene- or isolate-centric, limiting insight into the mechanisms that govern resistance transmission and persistence. Recent evidence indicates that plasmids, self-replicating mobile genetic elements (MGEs) capable of horizontal transfer across bacterial species, play an important role in disseminating clinically relevant resistance determinants across sectors. In this mini-review, we synthesize genomic and ecological evidence demonstrating that a limited number of plasmid incompatibility (Inc) groups recur across human, animal, and environmental reservoirs, often independent of bacterial host lineages. We highlight how plasmid transmission dynamics are shaped by host-independent mobility, ecological generalism, co-selection with accessory traits, and persistence in engineered and natural environments. We further examine why current AMR surveillance approaches, including ARG-centric metagenomics and isolate-based monitoring, systematically overlook these plasmid-mediated processes. Furthermore, we propose that plasmid-resolved analysis represents a critical and currently underutilized complementary layer for One Health AMR surveillance. Integrating plasmid classification and genomic reconstruction into wastewater-based epidemiology and cross-sector monitoring frameworks can improve attribution of transmission pathways, enhance early detection of high-risk resistance, and provide a mechanistic foundation for risk-informed intervention strategies.
Insights
Plasmids, not just genes, drive antimicrobial resistance (AMR) spread across human, animal, and environmental One Health sectors. Plasmid-resolved surveillance is crucial for understanding and controlling AMR transmission.
Area of Science:
- Microbiology
- Genomics
- Epidemiology
Background:
- Antimicrobial resistance (AMR) is a One Health challenge due to resistance gene exchange.
- Genomic surveillance of antimicrobial resistance genes (ARGs) is limited in understanding transmission dynamics.
- Plasmids are key mobile genetic elements (MGEs) driving AMR dissemination across sectors.
Purpose of the Study:
- To synthesize evidence on plasmid roles in AMR transmission.
- To evaluate current AMR surveillance limitations.
- To propose plasmid-resolved analysis for enhanced One Health surveillance.
Main Methods:
- Review of genomic and ecological evidence on plasmid Inc groups.
- Analysis of plasmid transmission dynamics and persistence.
- Examination of current ARG-centric and isolate-based surveillance limitations.
Main Results:
- A limited number of plasmid incompatibility (Inc) groups are prevalent across human, animal, and environmental reservoirs.
- Plasmid transmission is influenced by host-independent mobility, generalism, co-selection, and environmental persistence.
- Current surveillance methods overlook critical plasmid-mediated AMR processes.
Conclusions:
- Plasmids are critical drivers of AMR spread across One Health sectors.
- Plasmid-resolved analysis offers a vital, underutilized layer for AMR surveillance.
- Integrating plasmid data into surveillance can improve transmission pathway attribution and risk assessment.
Related Concept Videos
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