Pyrosequencing-based validation of a simple cell-suspension polymerase chain reaction assay for Campylobacter with application of high-processivity polymerase and novel internal amplification controls for rapid and specific detection |
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Authors: | Oakley Brian B Line J Eric Berrang Mark E Johnson Jessica M Buhr R Jeff Cox Nelson A Hiett Kelli L Seal Bruce S |
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Affiliation: | a Poultry Microbiological Safety Research Unit, USDA Agricultural Research Service, Richard B. Russell Agricultural Research Center, Athens, GA 30605, USAb Bacterial Epidemiology and Antibiotic Resistance Unit, USDA Agricultural Research Service, Richard B. Russell Agricultural Research Center, Athens, GA 30605, USAc South Carolina State University, Orangeburg, SC 29117, USA |
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Abstract: | Although Campylobacter is an important food-borne human pathogen, there remains a lack of molecular diagnostic assays that are simple to use, cost-effective, and provide rapid results in research, clinical, or regulatory laboratories. Of the numerous Campylobacter assays that do exist, to our knowledge none has been empirically tested for specificity using high-throughput sequencing. Here we demonstrate the power of next-generation sequencing to determine the specificity of a widely cited Campylobacter-specific polymerase chain reaction (PCR) assay and describe a rapid method for direct cell suspension PCR to quickly and easily screen samples for Campylobacter. We present a specific protocol which eliminates the need for time-consuming and expensive genomic DNA extractions and, using a high-processivity polymerase, demonstrate conclusive screening of samples in <1 h. Pyrosequencing results show the assay to be extremely (>99%) sensitive, and spike-back experiments demonstrated a detection threshold of <102 CFU mL−1. Additionally, we present 2 newly designed broad-range bacterial primer sets targeting the 23S rRNA gene that have wide applicability as internal amplification controls. Empirical testing of putative taxon-specific assays using high-throughput sequencing is an important validation step that is now financially feasible for research, regulatory, or clinical applications. |
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Keywords: | Campylobacter Pyrosequencing Internal amplification control (IAC) Molecular diagnostics |
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