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Multiplex Detection of Bacteria in Complex Clinical and Environmental Samples using Oligonucleotide-coupled Fluorescent Microspheres
Published on: October 23, 2011
Development and validation of a triplex real-time qPCR for sensitive detection and quantification of major rat bite
Ahmad Fawzy1, Ann-Sophie Giel2, Linda Fenske2
1Cairo University, Faculty of Veterinary Medicine, Department of Medicine and Infectious Diseases, Giza Square, 12211, Egypt; Hessian State Laboratory, 35392 Giessen, Germany.
Abstract:
Streptobacillus (S.) moniliformis is the most important pathogen causing rat bite fever (RBF) worldwide. This zoonotic pathogen is understudied mainly due to difficulties in culturing S. moniliformis as a fastidious microorganism. Therefore, advances in molecular detection techniques are highly needed, especially with regard to the widespread availability of real-time quantitative (q) PCR in laboratories. In this study, we aimed to develop a qPCR for the identification of Streptobacillus species and quantification of S. moniliformis in clinical samples, especially those derived from tissue samples of animal origin. We optimized a previously described PCR protocol in order to develop a qPCR, which can detect different Streptobacillus species with high specificity and is simultaneously able to quantitate S. moniliformis in different clinical matrices. The qPCR exhibited a limit of detection (LOD) of 21 copies/reaction representing ~4-5 streptobacilli, while the limit of quantification (LOQ) was 2.1 × 103 copies/reaction. It was also more sensitive than conventional PCR by two orders of magnitude and proved to have a substantial agreement (Kappa 0.74) compared to it with a superior detection rate in 374 samples from wild rats, laboratory rats and animals from holdings of wild-trapped rats. To conclude, the qPCR described in this study is an important molecular tool that is able to quantify S. moniliformis in tissue samples of animal origin. It represents a suitable tool for future establishment and evaluation of other molecular assays that are highly needed for a better understanding of epidemiology and pathophysiology of RBF. In experimental studies, it will also be useful for titration purposes since the quantification of the organism using classical plate counting technique is problematic and inaccurate.
Insights
A new real-time quantitative PCR (qPCR) accurately detects and quantifies Streptobacillus moniliformis, the bacteria causing rat bite fever (RBF). This molecular tool offers improved detection in animal tissue samples, aiding RBF research.
Area of Science:
- Microbiology
- Veterinary Medicine
- Molecular Diagnostics
Background:
- Streptobacillus moniliformis is a significant zoonotic pathogen responsible for rat bite fever (RBF) globally.
- The fastidious nature of S. moniliformis complicates its culture, hindering research and diagnostic development.
- There is a critical need for advanced molecular detection methods, particularly qPCR, for S. moniliformis.
Purpose of the Study:
- To develop and optimize a real-time quantitative PCR (qPCR) assay for identifying Streptobacillus species.
- To quantify S. moniliformis in clinical samples, with a focus on animal tissue.
- To enhance the molecular diagnostic capabilities for S. moniliformis detection.
Main Methods:
- Optimization of a previously described PCR protocol to create a qPCR assay.
- Validation of the qPCR assay for specificity in detecting various Streptobacillus species.
- Quantification of S. moniliformis in diverse clinical matrices, including animal tissues.
Main Results:
- The developed qPCR assay demonstrated high specificity for Streptobacillus species.
- The limit of detection (LOD) was 21 copies/reaction, and the limit of quantification (LOQ) was 2.1 × 10^3 copies/reaction.
- qPCR showed a two-fold increase in sensitivity compared to conventional PCR, with substantial agreement (Kappa 0.74) and superior detection rates in 374 animal samples.
Conclusions:
- The established qPCR assay is a valuable molecular tool for quantifying S. moniliformis in animal tissue samples.
- This assay facilitates the development and evaluation of future molecular assays for understanding RBF epidemiology and pathophysiology.
- The qPCR method provides a more accurate and reliable alternative to classical plate counting for organism quantification in experimental studies.

