Application of Magnetic Nanoseparation Technology in Rapid Detection of Foodborne Pathogens

被引:0
|
作者
Du S. [1 ]
Lu F. [1 ]
Zhou F. [1 ]
Wang J. [1 ]
Xiao Y. [1 ]
机构
[1] Nanjing Institute of Product Quality Inspection, Nanjing Institute of Quality Development and Advanced Technology Application, Nanjing
关键词
coupling methods; foodborne pathogens; magnetic nanoparticles; magnetic nanoseparation technology; recognition elements;
D O I
10.13386/j.issn1002-0306.2023050235
中图分类号
学科分类号
摘要
Foodborne pathogens are important factors that contribute to foodborne illnesses, posing significant threats to food safety and human health, and presenting a major challenge for global healthcare systems. Contaminated food matrices are complex and often have low concentrations of early-stage pathogens, which hinder the sensitivity of existing detection methods. Traditional microbial culture methods are typically used to increase the concentration of pathogens for detection purposes, but these methods are time-consuming and labor-intensive, making them inadequate for the rapid testing needs of regulatory authorities. Therefore, there is an urgent need for effective methods of isolating and enriching foodborne pathogens to accurately detect early-stage contamination in food and ensure food safety. In recent years, magnetic nanoparticles have been extensively studied. By modifying their surfaces with recognition elements that can specifically bind to pathogens, they can effectively isolate and enrich foodborne pathogens in complex food matrices. When combined with existing highly sensitive detection methods, these magnetic nanoparticles enable rapid early-stage detection of foodborne pathogens. This article provides an overview of Magnetic nanoseparation technology, the coupling methods of magnetic nanoparticles with recognition elements, the types of recognition elements, and the application of combined detection methods. The aim is to provide reference for the development of rapid detection methods for foodborne pathogens. © The Author(s) 2024.
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页码:361 / 371
页数:10
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共 74 条
  • [1] BLACKBURN C., Foodborne pathogens:Hazards, risk analysis and control[J], Foodborne Pathogens Hazards Risk Analysis & Control, 85, 1, (2009)
  • [2] SUN F, YAO M, SU H, Et al., A magnetic fluorescent spirochetes micromotor:Dynamic monitoring and in situ sterilization of foodborne pathogens[J], Sensors and Actuators B:Chemical, 385, 15, (2023)
  • [3] LIU Y, WEI Y M, LI L, Et al., Advances in traceability and typing of foodborne pathogenic bacteria[J], Science and Technology of Food Industry, 43, 12, (2022)
  • [4] ORGANIZATION W H., WHO estimates of the global burden of foodborne diseases:Foodborne disease burden epidemiology reference group 2007–2015[J], 978, 92, (2017)
  • [5] GE H, WANG Y, ZHAO X., Research on the drug resistance mechanism of foodborne pathogens[J], Microbial Pathogenesis, 162, (2022)
  • [6] GHATAK S., Strategies for elimination of foodborne pathogens, their influensive detection techniques and drawbacks[J], Meat Quality Analysis, 15, pp. 267-286, (2020)
  • [7] WANG J Y, SHEN J W, LU L X, Et al., Research progress in composite technologies for enrichment and detection of foodborne pathogens[J], Science and Technology of Food Industry, 42, 11, (2021)
  • [8] DING B Q, LIU S N., Application of fluorescence quantitative PCR technology in rapid food detection[J], Science and Technology of Food Industry, 42, 7, (2021)
  • [9] SVARC P L, JENSEN M B, LANGWAGEN M, Et al., Nutrient content in plant-based protein products intended for food composition databases[J], Journal of Food Composition and Analysis, 106, (2022)
  • [10] YILMAZ E, SARP G, UZCAN F, Et al., Application of magnetic nanomaterials in bioanalysis[J], Talanta, 229, (2021)