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Rapid detection and statistical differentiation of KPC gene variants in Gram-negative pathogens by use of
Amanda L Roth1, Nancy D Hanson
1Center for Research in Anti-Infectives and Biotechnology, Department of Medical Microbiology and Immunology, Creighton University School of Medicine, Omaha, Nebraska, USA.
Abstract:
In the United States, the production of the Klebsiella pneumoniae carbapenemase (KPC) is an important mechanism of carbapenem resistance in Gram-negative pathogens. Infections with KPC-producing organisms are associated with increased morbidity and mortality; therefore, the rapid detection of KPC-producing pathogens is critical in patient care and infection control. We developed a real-time PCR assay complemented with traditional high-resolution melting (HRM) analysis, as well as statistically based genotyping, using the Rotor-Gene ScreenClust HRM software to both detect the presence of bla(KPC) and differentiate between KPC-2-like and KPC-3-like alleles. A total of 166 clinical isolates of Enterobacteriaceae, Pseudomonas aeruginosa, and Acinetobacter baumannii with various β-lactamase susceptibility patterns were tested in the validation of this assay; 66 of these organisms were known to produce the KPC β-lactamase. The real-time PCR assay was able to detect the presence of bla(KPC) in all 66 of these clinical isolates (100% sensitivity and specificity). HRM analysis demonstrated that 26 had KPC-2-like melting peak temperatures, while 40 had KPC-3-like melting peak temperatures. Sequencing of 21 amplified products confirmed the melting peak results, with 9 isolates carrying bla(KPC-2) and 12 isolates carrying bla(KPC-3). This PCR/HRM assay can identify KPC-producing Gram-negative pathogens in as little as 3 h after isolation of pure colonies and does not require post-PCR sample manipulation for HRM analysis, and ScreenClust analysis easily distinguishes bla(KPC-2-like) and bla(KPC-3-like) alleles. Therefore, this assay is a rapid method to identify the presence of bla(KPC) enzymes in Gram-negative pathogens that can be easily integrated into busy clinical microbiology laboratories.
Insights
A new real-time PCR and high-resolution melting assay rapidly detects Klebsiella pneumoniae carbapenemase (KPC) in Gram-negative pathogens. This method accurately identifies KPC-2 and KPC-3 alleles, aiding infection control.
Area of Science:
- Clinical microbiology
- Molecular diagnostics
- Antimicrobial resistance
Background:
- Klebsiella pneumoniae carbapenemase (KPC) is a significant mechanism of carbapenem resistance in Gram-negative bacteria.
- Infections caused by KPC-producing organisms lead to increased patient morbidity and mortality.
- Rapid detection of KPC is crucial for effective patient care and infection control strategies.
Purpose of the Study:
- To develop and validate a rapid, real-time PCR assay combined with high-resolution melting (HRM) analysis.
- To accurately detect the presence of the bla(KPC) gene.
- To differentiate between KPC-2-like and KPC-3-like alleles in clinical isolates.
Main Methods:
- Development of a real-time PCR assay coupled with HRM analysis.
- Utilized Rotor-Gene ScreenClust HRM software for statistically based genotyping.
- Validated the assay on 166 clinical isolates of Enterobacteriaceae, Pseudomonas aeruginosa, and Acinetobacter baumannii.
Main Results:
- The assay demonstrated 100% sensitivity and specificity in detecting bla(KPC) in 66 known KPC-producing isolates.
- HRM analysis successfully differentiated KPC-2-like (26 isolates) and KPC-3-like (40 isolates) alleles.
- Sequencing confirmed HRM results, identifying bla(KPC-2) in 9 and bla(KPC-3) in 12 isolates.
Conclusions:
- The developed PCR/HRM assay provides a rapid (3-hour) method for identifying KPC-producing Gram-negative pathogens.
- The assay requires no post-PCR manipulation for HRM analysis and easily distinguishes between bla(KPC-2) and bla(KPC-3) alleles.
- This assay is suitable for integration into clinical microbiology laboratories for timely detection and infection control.
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