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Whole-Cell Molecularly Imprinted Fluorescent Photonic Microsphere Microarray for High-Throughput Detection of
Jingshuang Zhang1, Xiaomeng Liu1, Ziqiang Li1
1School of Food Science and Pharmaceutical Engineering, Nanjing Normal University, Nanjing 210023, China.
Analytical Chemistry
|April 30, 2025
Summary
A novel photonic microsphere microarray enables rapid, sensitive detection of multiple foodborne pathogens like Salmonella and E. coli. This cost-effective technology offers high-throughput screening without complex molecular probes or amplification.
Area of Science:
- * Materials Science and Engineering
- * Biosensing and Diagnostics
- * Food Safety and Public Health
Background:
- * Accurate and rapid detection of multiple foodborne pathogens remains a significant challenge in public health surveillance.
- * Existing methods often require complex procedures, enrichment, or amplification, limiting throughput and increasing costs.
- * Development of sensitive, specific, and cost-effective diagnostic platforms is crucial for food safety.
Purpose of the Study:
- * To develop a whole-cell imprinted microarray platform utilizing three-dimensional photonic microspheres for simultaneous detection of foodborne pathogens.
- * To functionalize photonic microspheres with specific monomers for targeted capture and fluorescence-based quantification of bacteria.
- * To evaluate the performance of the developed microarray in terms of detection range, sensitivity, and specificity.
Main Methods:
- * Fabrication of a microarray using 3D photonic microspheres functionalized with 3-formylphenylboric acid and fluorescein isothiocyanate.
- * Incubation of the functionalized microsphere microarray with multiplex foodborne pathogenic bacteria (Salmonella, Shigella, Escherichia coli O157:H7).
- * Quantification of captured bacteria based on fluorescence intensity, correlating signal strength with pathogen concentration.
Main Results:
- * The photonic microsphere microarray demonstrated specific capture of target pathogenic bacteria.
- * Wide linear detection ranges were achieved: 10 to 109 CFU/mL for Salmonella, 102 to 106 CFU/mL for Shigella, and 10 to 107 CFU/mL for E. coli O157:H7.
- * Low limits of detection were obtained: 3 CFU/mL for Salmonella, 20 CFU/mL for Shigella, and 1 CFU/mL for E. coli O157:H7.
Conclusions:
- * The developed whole-cell imprinted photonic microsphere microarray offers a promising approach for rapid, sensitive, and high-throughput multiplex pathogen detection.
- * The system eliminates the need for molecular probes, enrichment, or amplification, simplifying the detection process.
- * This technology holds significant potential for improving food safety and public health monitoring through cost-effective and efficient pathogen surveillance.
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