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.

AMB Express
|July 30, 2013
PubMed

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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