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Identification and characterization of plasmids carrying the mobile colistin resistance gene mcr-1 using optical DNA
Sriram Kk1, Moa S Wranne1, Tsegaye Sewunet2
1Department of Biology and Biological Engineering, Chalmers University of Technology, Gothenburg, Sweden.
Objectives:
Colistin is a last-resort antibiotic, but there has been a rapid increase in colistin resistance, threatening its use in the treatment of infections with carbapenem-resistant Enterobacterales (CRE). Plasmid-mediated colistin resistance, in particular the mcr-1 gene, has been identified and WGS is the go-to method in identifying plasmids carrying mcr-1 genes. The goal of this study is to demonstrate the use of optical DNA mapping (ODM), a fast, efficient and amplification-free technique, to characterize plasmids carrying mcr-1.
Methods:
ODM is a single-molecule technique, which we have demonstrated can be used for identifying plasmids harbouring antibiotic resistance genes. We here applied the technique to plasmids isolated from 12 clinical Enterobacterales isolates from patients at a major hospital in Thailand and verified our results using Nanopore long-read sequencing.
Results:
We successfully identified plasmids encoding the mcr-1 gene and, for the first time, demonstrated the ability of ODM to identify resistance gene sites in small (∼30 kb) plasmids. We further identified bla CTX-M genes in different plasmids than the ones encoding mcr-1 in three of the isolates studied. Finally, we propose a cut-and-stretch assay, based on similar principles, but performed using surface-functionalized cover slips for DNA immobilization and an inexpensive microscope with basic functionalities, to identify the mcr-1 gene in a plasmid sample.
Conclusions:
Both ODM and the cut-and-stretch assay developed could be very useful in identifying plasmids encoding antibiotic resistance in hospitals and healthcare facilities. The cut-and-stretch assay is particularly useful in low- and middle-income countries, where existing techniques are limited.
Insights
Optical DNA mapping (ODM) efficiently identifies colistin resistance genes on plasmids. A novel, low-cost assay offers a valuable tool for antibiotic resistance surveillance, especially in resource-limited settings.
Area of Science:
- Molecular Biology
- Genomics
- Antimicrobial Resistance
Background:
- Colistin resistance in carbapenem-resistant Enterobacterales (CRE) is a growing threat.
- Plasmid-mediated colistin resistance, particularly the mcr-1 gene, is a major concern.
- Whole Genome Sequencing (WGS) is the standard for identifying mcr-1 carrying plasmids.
Purpose of the Study:
- To demonstrate Optical DNA Mapping (ODM) as a rapid, amplification-free method for characterizing mcr-1 carrying plasmids.
- To evaluate ODM's utility in identifying antibiotic resistance genes on plasmids from clinical isolates.
Main Methods:
- Applied ODM to plasmids from 12 clinical Enterobacterales isolates from Thailand.
- Validated ODM results using Nanopore long-read sequencing.
- Developed a novel 'cut-and-stretch' assay for mcr-1 detection.
Main Results:
- Successfully identified plasmids encoding the mcr-1 gene using ODM.
- Demonstrated ODM's ability to pinpoint resistance gene sites on small plasmids (~30 kb).
- Detected blaCTX-M genes on separate plasmids in three isolates.
Conclusions:
- ODM is a valuable tool for identifying antibiotic resistance plasmids in healthcare settings.
- The developed cut-and-stretch assay provides a low-cost, accessible method for mcr-1 detection.
- These techniques are particularly beneficial for low- and middle-income countries.
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