Self-Transmissible Mercury Resistance Plasmids with Gene-Mobilizing Capacity in Soil Bacterial Populations: Influence of Wheat Roots and Mercury Addition
- 1 April 1998
- journal article
- Published by American Society for Microbiology in Applied and Environmental Microbiology
- Vol. 64 (4) , 1210-1219
- https://doi.org/10.1128/aem.64.4.1210-1219.1998
Abstract
A set of mercury resistance plasmids was obtained from wheat rhizosphere soil amended or not amended with mercuric chloride via exogenous plasmid isolation by using Pseudomonas fluorescens R2f, Pseudomonas putida UWC1, and Enterobacter cloacae BE1 as recipient strains. The isolation frequencies were highest from soil amended with high levels of mercury, and the isolation frequencies from unamended soil were low. With P. putida UWC1 as the recipient, the isolation frequency was significantly enhanced in wheat rhizosphere compared to bulk soil. Twenty transconjugants were analyzed per recipient strain. All of the transconjugants contained plasmids which were between 40 and 50 kb long. Eight selected plasmids were distributed among five groups, as shown by restriction digestion coupled with a similarity matrix analysis. However, all of the plasmids formed a tight group, as judged by hybridization with two whole-plasmid probes and comparisons with other plasmids in dot blot hybridization analyses. The results of replicon typing and broad-host-range incompatibility (Inc) group-specific PCR suggested that the plasmid isolates were not related to any previously described Inc group. Although resistance to copper, resistance to streptomycin, and/or resistance to chloramphenicol was found in several plasmids, catabolic sequences were generally not identified. One plasmid, pEC10, transferred into a variety of bacteria belonging to the β and γ subdivisions of the class Proteobacteria and mobilized as well as retromobilized the IncQ plasmid pSUP104. A PCR method for detection of pEC10-like replicons was used, in conjunction with other methods, to monitor pEC10-homologous sequences in mercury-polluted and unpolluted soils. The presence of mercury enhanced the prevalence of pEC10-like replicons in soil and rhizosphere bacterial populations.Keywords
This publication has 35 references indexed in Scilit:
- Sterilization and inhibition of microbial activity in soilJournal of Microbiological Methods, 1996
- Monitoring the spread of broad host and narrow host range plasmids in soil microcosmsFEMS Microbiology Ecology, 1996
- Quantitative 16S rDNA-targeted polymerase chain reaction and oligonucleotide hybridization for the detection of Paenibacillus azotofixans in soil and the wheat rhizosphereFEMS Microbiology Ecology, 1996
- Bacterial dichloropropene degradation in soil; screening of soils and involvement of plasmids carrying the dhlA geneSoil Biology and Biochemistry, 1995
- Retromobilization of heavy metal resistance genes in unpolluted and heavy metal polluted soilFEMS Microbiology Ecology, 1995
- Demonstration of tra+ plasmid activity in bacteria indigenous to the phyllosphere of sugar beet; gene transfer to a recombinant pseudomonadFEMS Microbiology Ecology, 1993
- Rapid DNA extraction protocol from soil for polymerase chain reaction‐mediated amplificationJournal of Applied Bacteriology, 1993
- Bacterial conjugation between pseudomonads in the rhizosphere of wheatFEMS Microbiology Letters, 1988
- Plasmid-borne mercury resistance in aquatic bacteriaFEMS Microbiology Letters, 1988
- Mercury resistance among soil bacteria: Ecology and transferability of genes encoding resistanceSoil Biology and Biochemistry, 1984