The Experts below are selected from a list of 87 Experts worldwide ranked by ideXlab platform

Richard J. Meinersmann - One of the best experts on this subject based on the ideXlab platform.

  • Prevalence of ColE1-like plasmids and kanamycin resistance genes in Salmonella enterica serovars.
    Applied and environmental microbiology, 2010
    Co-Authors: Chin-yi Chen, Rebecca L. Lindsey, Terence P. Strobaugh, Jonathan G. Frye, Richard J. Meinersmann
    Abstract:

    Multi-antimicrobial-resistant Salmonella enterica strains frequently carry resistance genes on plasmids. Recent studies focus heavily on large conjugative plasmids, and the role that small plasmids play in resistance gene transfer is largely unknown. To expand our previous studies in assessing the prevalence of the isolates harboring ColE1-like plasmids carrying the aph gene responsible for kanamycin resistance (Kanr) phenotypes, 102 Kanr Salmonella isolates collected through the National Antimicrobial Resistance Monitoring System (NARMS) in 2005 were screened by PCR using ColE1 primer sets. Thirty isolates were found to be positive for ColE1-like replicon. Plasmids from 23 isolates were able to propagate in Escherichia coli and were subjected to further characterization. Restriction mapping revealed three major plasmid groups found in three or more isolates, with each group consisting of two to three subtypes. The aph genes from the Kanr Salmonella isolates were amplified by PCR, sequenced, and showed four different aph(3′)-I genes. The distribution of the ColE1 plasmid groups in association with the aph gene, Salmonella serovar, and isolate source demonstrated a strong linkage of the plasmid with S. enterica serovar Typhimurium DT104. Due to their high copy number and mobility, the ColE1-like plasmids may play a critical role in transmission of antibiotic resistance genes among enteric pathogens, and these findings warrant a close monitoring of this plasmid incompatibility group.

Chris Whitfield - One of the best experts on this subject based on the ideXlab platform.

  • lateral transfer of rfb genes a mobilizable ColE1 type plasmid carries the rfbo 54 o 54 antigen biosynthesis gene cluster from salmonella enterica serovar borreze
    Journal of Bacteriology, 1995
    Co-Authors: Wendy J Keenleyside, Chris Whitfield
    Abstract:

    Plasmid pWQ799 is a 6.9-kb plasmid isolated from Salmonella enterica serovar Borreze. Our previous studies have shown that the plasmid contains a functional biosynthetic gene cluster for the expression of the O:54 lipopolysaccharide O-antigen of this serovar. The minimal replicon functions of pWQ799 have been defined, and a comparison with nucleotide and protein databases revealed this replicon to be virtually identical to ColE1. This is the first report of involvement of ColE1-related plasmids in O-antigen expression. The replicon of pWQ799 is predicted to encode two RNA molecules, typical of other ColE1-type plasmids. RNAII, the putative replication primer from pWQ799, shares regions of homology with RNAII from ColE1. RNA1 is an antisense regulator of DNA replication in ColE1-related plasmids. The coding region for RNAI from pWQ799 shares no homology with any other known RNAI sequence but is predicted to adopt a secondary structure characteristic of RNAI molecules. pWQ799 may therefore represent a new incompatibility group within this family. pWQ799 also possesses cer, rom, and mob determinants, and these differ minimally from those of ColE1. The plasmid is mobilizable in the presence of either the broad-host-range helper plasmid pRK2013 or the IncI1 plasmid R64drd86. Mobilization and transfer of pWQ799 to other organisms provides the first defined mechanism for lateral transfer of O-antigen biosynthesis genes in S. enterica and explains both the distribution of related plasmids and coexpression of the O:54 factor with other O-factors in different Salmonella serovars. The base composition of the pWQ799 replicon sequences gives an average percent G+C value typical of Salmonella spp. In contrast, the percent G+C value is dramatically lower with rfb0:54, consistent with the possibility that the cluster was acquired from an organism with much lower G+C composition.

Chin-yi Chen - One of the best experts on this subject based on the ideXlab platform.

  • Prevalence of ColE1-like plasmids and kanamycin resistance genes in Salmonella enterica serovars.
    Applied and environmental microbiology, 2010
    Co-Authors: Chin-yi Chen, Rebecca L. Lindsey, Terence P. Strobaugh, Jonathan G. Frye, Richard J. Meinersmann
    Abstract:

    Multi-antimicrobial-resistant Salmonella enterica strains frequently carry resistance genes on plasmids. Recent studies focus heavily on large conjugative plasmids, and the role that small plasmids play in resistance gene transfer is largely unknown. To expand our previous studies in assessing the prevalence of the isolates harboring ColE1-like plasmids carrying the aph gene responsible for kanamycin resistance (Kanr) phenotypes, 102 Kanr Salmonella isolates collected through the National Antimicrobial Resistance Monitoring System (NARMS) in 2005 were screened by PCR using ColE1 primer sets. Thirty isolates were found to be positive for ColE1-like replicon. Plasmids from 23 isolates were able to propagate in Escherichia coli and were subjected to further characterization. Restriction mapping revealed three major plasmid groups found in three or more isolates, with each group consisting of two to three subtypes. The aph genes from the Kanr Salmonella isolates were amplified by PCR, sequenced, and showed four different aph(3′)-I genes. The distribution of the ColE1 plasmid groups in association with the aph gene, Salmonella serovar, and isolate source demonstrated a strong linkage of the plasmid with S. enterica serovar Typhimurium DT104. Due to their high copy number and mobility, the ColE1-like plasmids may play a critical role in transmission of antibiotic resistance genes among enteric pathogens, and these findings warrant a close monitoring of this plasmid incompatibility group.

H Uchida - One of the best experts on this subject based on the ideXlab platform.

  • Transcription and initiation of ColE1 DNA replication in Escherichia coli K-12.
    Journal of bacteriology, 1991
    Co-Authors: Naoki Inoue, H Uchida
    Abstract:

    By S1 nuclease protection mapping, we characterized RNA transcripts and nascent ColE1 DNA synthesized in wild-type Escherichia coli cells after infection with lambda-mini-ColE1 hybrid bacteriophages. Transcription of the RNA II region of ColE1 DNA in vivo starts mostly from the RNA II promoter, which was identified by in vitro experiments, and ends at or near the ori site. Synthesis of the leading strand of ColE1 DNA was found to start at the ori site. Nevertheless, the molar ratio of the nascent DNA to the synthesized transcripts ending at the ori site was less than 0.05. In bacterial rnh mutants whose RNase H activities were less than 0.06% of that of the wild type, transcription patterns, as well as nascent DNA synthesis, were still similar to those in rnh+ cells. However, in bacteria whose rnh gene was interrupted by insertion of a drug resistance gene, the number of transcripts ending at the ori site was much reduced and that of transcripts reading through the ori site was definitely increased relative to that observed in wild-type bacteria. These results suggested that cleavage of the RNA transcript at the ori site in vivo is dependent on RNase H activity, as demonstrated in the in vitro system, but most of the cleaved RNA is unable to prime initiation of ColE1 DNA synthesis efficiently. Images

Farhad Maruf Abdulkarim - One of the best experts on this subject based on the ideXlab platform.

  • origin specific reduction of ColE1 plasmid copy number due to mutations in a distinct region of the escherichia coli rna polymerase
    Molecular Genetics and Genomics, 2002
    Co-Authors: Josefine Ederth, Leif A Isaksson, Farhad Maruf Abdulkarim
    Abstract:

    Mutations affecting a region of the Escherichia coli RNA polymerase have been isolated that specifically reduce the copy number of ColE1-type plasmids. The mutations, which result in a single amino acid alteration (G1161R) or a 41-amino acid deletion (Δ1149–1190) are located near the 3′-terminal region in the rpoC gene, which encodes the largest subunit (β') of the RNA polymerase. The rpoC deletion and the point mutation cause over 20- and 10-fold reductions, respectively, in the copy number of ColE1. ColE1 plasmid numbers are regulated by two plasmid-encoded RNAs: RNA II, which acts as a preprimer for the DNA polymerase I to start initiation of replication, and RNA I, its antisense inhibitor. Altered expression from the RNA I and RNA II promoters in vivo was observed in the RNA polymerase mutants. The RNA I/RNA II ratio is higher in the mutants than in the wild-type strain and this is most probably the main reason for the reduction in the ColE1 copy number in the two rpoC mutants.