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Detection of Horizontal Gene Transfer Mediated by Natural Conjugative Plasmids in E. coli
Published on: March 24, 2023
Tracking Global Transmission Dynamics of the Plasmid-Mediated mcr Gene: A Genomic Epidemiological Analysis
Jinzhao Long1, Xin Wang1, Mengyue Liu1
1Department of Epidemiology, College of Public Health, Zhengzhou University, No. 100 Kexue Avenue, Zhengzhou 450001, China.
Abstract:
The emergence and spread of mobile colistin resistance (mcr) genes pose a significant challenge in controlling multidrug-resistant Gram-negative pathogens. Understanding the epidemiology of mcr-carrying plasmids is essential for mitigating their dissemination across humans, animals, and the environment. To characterize their spatiotemporal dynamics on a global scale, we analyzed an extensive collection of 5,549 mcr-carrying plasmids spanning 1995 to the present. We found that cross-genera transmission patterns of mcr-carrying plasmids varied across four distinct periods. Initially, IncHI2/HI2A plasmids provided a survival advantage across genera and regions, followed by IncI2, and ultimately by IncX4. Moreover, the three plasmid lineages (i.e., IncX4, IncI2, and IncHI2/HI2A) have reached a stable distribution across diverse bacterial hosts and geographic regions through horizontal gene transfer and clonal expansion. By integrating sequence similarity clustering of plasmids and mcr-related genetic environments, we identified 79 cross-genus, 43 intra-E. coli, and 10 intra-S. enterica transmission units. Molecular dating analysis traced the origin of IncX4 plasmids to 1990 in animal hosts, with phylogenetic evidence indicating potential cross-host, -genus, and -region exchange. Notably, IncP1 plasmids emerged as important vectors of mcr-1 and mcr-3 spread, particularly in Southeast Asia, warranting enhanced surveillance. These findings provide critical insights into the global transmission networks of plasmid-mediated mcr genes and underscore the urgent need for coordinated interventions.
Insights
Mobile colistin resistance (mcr) genes on plasmids spread globally through distinct transmission patterns. IncX4, IncI2, and IncHI2/HI2A plasmids are now stable across hosts and regions, necessitating enhanced surveillance and interventions.
Area of Science:
- Microbiology
- Genetics
- Epidemiology
Background:
- Mobile colistin resistance (mcr) genes are a major threat to controlling multidrug-resistant Gram-negative pathogens.
- Understanding the epidemiology of mcr-carrying plasmids is crucial for limiting their spread among humans, animals, and the environment.
Purpose of the Study:
- To analyze the global spatiotemporal dynamics of mcr-carrying plasmids.
- To identify transmission patterns and origins of key plasmid lineages.
Main Methods:
- Analysis of 5,549 mcr-carrying plasmids from 1995 to present.
- Sequence similarity clustering of plasmids and mcr genetic environments.
- Molecular dating and phylogenetic analysis.
Main Results:
- Identified four distinct periods of mcr-carrying plasmid transmission patterns, with IncHI2/HI2A, IncI2, and IncX4 plasmids showing varying advantages.
- Established stable distribution of IncX4, IncI2, and IncHI2/HI2A plasmids across diverse hosts and regions via horizontal gene transfer and clonal expansion.
- Identified 79 cross-genus, 43 intra-E. coli, and 10 intra-S. enterica transmission units.
- Traced IncX4 plasmid origin to 1990 in animal hosts and highlighted IncP1 plasmids as key vectors for mcr-1 and mcr-3 spread in Southeast Asia.
Conclusions:
- mcr-carrying plasmids have evolved complex global transmission networks.
- Coordinated interventions and enhanced surveillance are urgently needed to mitigate the spread of plasmid-mediated mcr genes.
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