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Updated: May 9, 2026

Testing the Role of Multicopy Plasmids in the Evolution of Antibiotic Resistance
Published on: May 2, 2018
Mercurial-resistance determinants in Pseudomonas strain K-62 plasmid pMR68
Yuka Sone1, Yusuke Mochizuki1, Keita Koizawa1
1Department of Public Health and Molecular Toxicology, School of Pharmacy, Kitasato University, 5-9-1 Shirokane, Tokyo, Minato-ku 108-8641, Japan.
Abstract:
We report the complete nucleotide sequence of plasmid pMR68, isolated from Pseudomonas strain K-62, two plasmids contribute to broad-spectrum mercury resistance and that the mer operon from one of them (pMR26) has been previously characterized. The plasmid was 71,020 bp in length and contained 75 coding regions. Three mer gene clusters were identified. The first comprised merR-orf4-orf5-merT1-merP1-merF-merA-merB1, which confers bacterial resistance to mercuric ions and organomercury. The second and third clusters comprised merT2-merP2, which encodes a mercury transport system, and merB2, which encodes an organomercurial lyase, respectively. The deduced amino acid sequences for the proteins encoded by each of the mer genes identified in pMR68 bore greater similarity to sequences from Methylobacterium extorquens AM1 than to those from pMR26, a second mercury-resistance plasmid from Pseudomonas strain K-62. Escherichia coli cells carrying pMKY12 (containing merR-orf4-orf5-merT1-merP1-merF-merA-merB1 cloned from pMR68) and cells carrying pMRA114 (containing merR-merT-merP-merA-merG-merB1 cloned from plasmid pMR26) were more resistant to, and volatilized more, mercury from mercuric ions and phenylmercury than the control cells. The present results, together with our earlier findings, indicate that the high phenylmercury resistance noted for Pseudomonas strain K-62 seems to be achieved by multiple genes, particularly by the multiple merB encoding organomercurial lyase and one merG encoding cellular permeability to phenylmercury. The novel mer gene identified in pMR68 may help us to design new strategies aimed at the bioremediation of mercurials.
Insights
The complete nucleotide sequence of plasmid pMR68 reveals multiple mercury resistance (mer) gene clusters. This discovery offers potential for novel bioremediation strategies against mercury pollution.
Area of Science:
- Microbiology
- Environmental Science
- Molecular Biology
Background:
- Pseudomonas strain K-62 exhibits broad-spectrum mercury resistance.
- Two plasmids contribute to this resistance, with one (pMR26) previously characterized.
- Plasmid pMR68's complete nucleotide sequence is now reported.
Purpose of the Study:
- To elucidate the genetic basis of mercury resistance in Pseudomonas strain K-62.
- To characterize the mer gene clusters within plasmid pMR68.
- To explore potential applications in mercury bioremediation.
Main Methods:
- Complete nucleotide sequencing of plasmid pMR68 (71,020 bp).
- Identification and analysis of 75 coding regions and three mer gene clusters.
- Comparative sequence analysis of mer genes with known mercury resistance determinants.
- Functional analysis by cloning mer genes into E. coli and assessing mercury resistance and volatilization.
Main Results:
- Plasmid pMR68 contains three distinct mer gene clusters, including novel genes.
- The identified mer genes confer resistance to mercuric ions and organomercury compounds.
- Genes in pMR68 show higher sequence similarity to Methylobacterium extorquens AM1 than to pMR26.
- E. coli expressing pMR68-derived genes demonstrated enhanced mercury resistance and volatilization.
Conclusions:
- Multiple mer genes, including novel ones in pMR68, contribute to the high mercury resistance of Pseudomonas strain K-62.
- The presence of multiple organomercurial lyase (merB) and a phenylmercury transport gene (merG) is key to phenylmercury resistance.
- The novel mer gene identified in pMR68 presents opportunities for developing new mercury bioremediation technologies.
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