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Updated: May 7, 2026

Detection of Foodborne Bacterial Pathogens from Individual Filth Flies
Published on: February 13, 2015
Development of a PCR assay for rapid detection of Cronobacter spp. from food
Wanyi Chen1, Lianzhong Ai, Jielin Yang
1a State Key Laboratory of Dairy Biotechnology, Technology Center of Bright Dairy & Food Co., Ltd., 1518 West Jiangchang Road, Shanghai 200436, People's Republic of China.
Insights
A new polymerase chain reaction (PCR) assay rapidly identifies Cronobacter spp., a pathogen causing neonatal meningitis. This method offers a faster alternative to traditional culture techniques for food safety testing.
Area of Science:
- Microbiology
- Molecular Biology
- Food Safety
Background:
- Necrotizing meningitis outbreaks in neonates linked to Cronobacter spp. underscore the need for rapid detection.
- Conventional methods for Cronobacter spp. identification in infant formula are slow and labor-intensive.
Purpose of the Study:
- To develop and optimize a rapid polymerase chain reaction (PCR) assay for the accurate identification of Cronobacter spp.
- To target the gyrB gene for specific and sensitive detection of Cronobacter spp.
Main Methods:
- Sequencing of the gyrB gene from Cronobacter spp. and Enterobacter spp. strains to design specific primers.
- Development and optimization of a PCR assay targeting a 438 bp DNA product.
- Testing the PCR assay's sensitivity, specificity, and performance on inoculated infant formula and food samples.
Main Results:
- The PCR assay successfully amplified a 438 bp product from all 38 Cronobacter spp. strains tested, with no amplification from 34 other bacterial species.
- The detection limit was as low as 1.41 pg/PCR (282 genomic copies).
- In inoculated infant formula, the target DNA fragment was detected after 6 hours of enrichment, and the assay identified Cronobacter spp. in 3 out of 25 food samples, compared to 2 by conventional methods.
Conclusions:
- The developed PCR assay provides a rapid and specific tool for identifying Cronobacter spp.
- This molecular method is valuable for ensuring the safety of food products, including infant formula, and potentially environmental samples.
Abstract:
The occurrence of outbreaks of necrotizing meningitis caused by Cronobacter spp. in neonates highlights the need for rapid detection and accurate identification of this pathogenic species. The gold standard for isolation and identification of Cronobacter spp. from powdered infant formula is time consuming and labor intensive. The gyrB gene that encodes the B subunit of DNA gyrase (topoisomerase type II) was found to be suitable for the identification of Cronobacter spp. A region of the gyrB gene of 38 Cronobacter spp. strains and 5 Enterobacter spp. strains was amplified and sequenced, and a pair of primers was designed and synthesized based on the sequence of the gyrB gene. A polymerase chain reaction (PCR) system was developed and optimized to detect Cronobacter spp. The PCR assay amplified a 438 bp DNA product from all 38 Cronobacter spp. strains tested but not from 34 other bacteria. The detection limit was 1.41 pg/PCR (equivalent 282 genomic copies) when the genomic DNA of Cronobacter sakazakii ATCC 29544 was 10-fold diluted. Infant formula powders from 3 different commercial brands were inoculated with strains ATCC 29544 at a level of 56 colony-forming units, and the target fragment were produced after samples were enriched for 6 h at 37 °C. Twenty-five food samples were evaluated by the PCR assay and the conventional method. A PCR product of the expected size was obtained from 3 samples; however, Cronobacter spp. strains were isolated from only 2 samples by the conventional method. This method is a useful tool for rapid identification of Cronobacter spp. in food and potentially environmental samples.
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