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Detection of Plasmid-Mediated AmpC β-Lactamase Genes in Clinical Isolates by Using Multiplex PCR

Journal of Clinical Microbiology · 2002 · Vol. 40(6) · pp. 2153–2162
F. Javier Pérez-PérezNancy D. Hanson

Abstract

Therapeutic options for infections caused by gram-negative organisms expressing plasmid-mediated AmpC beta-lactamases are limited because these organisms are usually resistant to all the beta-lactam antibiotics, except for cefepime, cefpirome, and the carbapenems. These organisms are a major concern in nosocomial infections and should therefore be monitored in surveillance studies. Six families of plasmid-mediated AmpC beta-lactamases have been identified, but no phenotypic test can differentiate among them, a fact which creates problems for surveillance and epidemiology studies. This report describes the development of a multiplex PCR for the purpose of identifying family-specific AmpC beta-lactamase genes within gram-negative pathogens. The PCR uses six sets of ampC-specific primers resulting in amplicons that range from 190 bp to 520 bp and that are easily distinguished by gel electrophoresis. ampC multiplex PCR differentiated the six plasmid-mediated ampC-specific families in organisms such as Klebsiella pneumoniae, Escherichia coli, Proteus mirabilis, and Salmonella enterica serovar Typhimurium. Family-specific primers did not amplify genes from the other families of ampC genes. Furthermore, this PCR-based assay differentiated multiple genes within one reaction. In addition, WAVE technology, a high-pressure liquid chromatography-based separation system, was used as a way of decreasing analysis time and increasing the sensitivity of multiple-gene assays. In conclusion, a multiplex PCR technique was developed for identifying family-specific ampC genes responsible for AmpC beta-lactamase expression in organisms with or without a chromosomal AmpC beta-lactamase gene.

Antibiotic Resistance in BacteriaVibrio bacteria research studiesBacterial biofilms and quorum sensingBiologyMultiplex polymerase chain reactionPlasmidMicrobiologyProteus mirabilisSalmonella entericaGeneAmpliconPolymerase chain reactionKlebsiella pneumoniae

MeSH terms

Bacterial Proteinsbeta-LactamasesChromatography, High Pressure LiquidGram-Negative BacteriaHumansMolecular Sequence DataPlasmidsSensitivity and SpecificitySpecies SpecificityPolymerase Chain ReactionSequence Analysis, DNADNA Primersbeta-Lactam Resistance
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