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Updated: Jul 26, 2025

Testing the Role of Multicopy Plasmids in the Evolution of Antibiotic Resistance
Published on: May 2, 2018
The evolution of infectious transmission promotes the persistence of mcr-1 plasmids
Jun Yang1,2, Renjie Wu1, Qiang Xia3
1College of Veterinary Medicine National Risk Assessment Laboratory for Antimicrobial Resistant of Microorganisms in Animals, Guangdong Provincial Key Laboratory of Veterinary Pharmaceutics Development and Safety Evaluation, Key Laboratory of Zoonosis of Ministry of Agricultural and Rural Affairs South China Agricultural University , Guangzhou, China.
Abstract:
Conjugative plasmids play a vital role in bacterial evolution and promote the spread of antibiotic resistance. They usually cause fitness costs that diminish the growth rates of the host bacteria. Compensatory mutations are known as an effective evolutionary solution to reduce the fitness cost and improve plasmid persistence. However, whether the plasmid transmission by conjugation is sufficient to improve plasmid persistence is debated since it is an inherently costly process. Here, we experimentally evolved an unstable and costly mcr-1 plasmid pHNSHP24 under laboratory conditions and assessed the effects of plasmid cost and transmission on the plasmid maintenance by the plasmid population dynamics model and a plasmid invasion experiment designed to measure the plasmid's ability to invade a plasmid-free bacterial population. The persistence of pHNSHP24 improved after 36 days evolution due to the plasmid-borne mutation A51G in the 5'UTR of gene traJ. This mutation largely increased the infectious transmission of the evolved plasmid, presumably by impairing the inhibitory effect of FinP on the expression of traJ. We showed that increased conjugation rate of the evolved plasmid could compensate for the plasmid loss. Furthermore, we determined that the evolved high transmissibility had little effect on the mcr-1-deficient ancestral plasmid, implying that high conjugation transfer is vital for maintaining the mcr-1-bearing plasmid. Altogether, our findings emphasized that, besides compensatory evolution that reduces fitness costs, the evolution of infectious transmission can improve the persistence of antibiotic-resistant plasmids, indicating that inhibition of the conjugation process could be useful to combat the spread of antibiotic-resistant plasmids. IMPORTANCE Conjugative plasmids play a key role in the spread of antibiotic resistance, and they are well-adapted to the host bacteria. However, the evolutionary adaptation of plasmid-bacteria associations is not well understood. In this study, we experimentally evolved an unstable colistin resistance (mcr-1) plasmid under laboratory conditions and found that increased conjugation rate was crucial for the persistence of this plasmid. Interestingly, the evolved conjugation was caused by a single-base mutation, which could rescue the unstable plasmid from extinction in bacterial populations. Our findings imply that inhibition of the conjugation process could be necessary for combating the persistence of antibiotic-resistance plasmids.
Insights
Increased plasmid transmission, driven by a single mutation, improved the persistence of antibiotic resistance genes in bacteria. This suggests targeting conjugation could combat the spread of resistance.
Area of Science:
- Microbiology
- Evolutionary Biology
- Genetics
Background:
- Conjugative plasmids are key drivers of bacterial evolution and antibiotic resistance spread.
- Plasmids often impose fitness costs on host bacteria, impacting their growth rates.
- Compensatory mutations can mitigate these fitness costs, enhancing plasmid persistence.
Purpose of the Study:
- To investigate if enhanced plasmid transmission can improve the persistence of costly antibiotic resistance plasmids.
- To experimentally evolve an unstable mcr-1 plasmid and analyze its evolutionary adaptations.
- To assess the role of conjugation rate in maintaining plasmid-borne antibiotic resistance.
Main Methods:
- Experimental evolution of the mcr-1 plasmid pHNSHP24 under laboratory conditions.
- Plasmid population dynamics modeling to assess plasmid maintenance.
- Plasmid invasion experiments to measure the ability to invade plasmid-free populations.
Main Results:
- The evolved plasmid pHNSHP24 showed improved persistence after 36 days due to a mutation (A51G) in the traJ gene's 5'UTR.
- This mutation significantly increased infectious plasmid transmission by enhancing conjugation rate.
- The increased conjugation compensated for plasmid loss and was crucial for maintaining the mcr-1 plasmid.
Conclusions:
- Evolution of enhanced infectious transmission, not just compensatory mutation reducing fitness costs, can improve antibiotic-resistant plasmid persistence.
- Inhibiting the conjugation process may be a viable strategy to combat the spread of antibiotic-resistant plasmids.
- A single mutation can dramatically alter plasmid transmissibility and persistence, highlighting rapid evolutionary adaptation.
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