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Microfluidic devices for sample preparation and rapid detection of foodborne pathogens

机译:用于样品制备的微流体装置和食品载体的快速检测

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Rapid detection of foodborne pathogens at an early stage is imperative for preventing the outbreak of foodbome diseases, known as serious threats to human health. Conventional bacterial culturing methods for foodborne pathogen detection are time consuming, laborious, and with poor pathogen diagnosis competences. This has prompted researchers to call the current status of detection approaches into question and leverage new technologies for superior pathogen sensing outcomes. Novel strategies mainly rely on incorporating all the steps from sample preparation to detection in miniaturized devices for online monitoring of pathogens with high accuracy and sensitivity in a time-saving and cost effective manner. Lab on chip is a blooming area in diagnosis, which exploits different mechanical and biological techniques to detect very low concentrations of pathogens in food samples. This is achieved through streamlining the sample handling and concentrating procedures, which will subsequently reduce human errors and enhance the accuracy of the sensing methods. Integration of sample preparation techniques into these devices can effectively minimize the impact of complex food matrix on pathogen diagnosis and improve the limit of detections. Integration of pathogen capturing bio-receptors on microfluidic devices is a crucial step, which can facilitate recognition abilities in harsh chemical and physical conditions, offering a great commercial benefit to the food-manufacturing sector. This article reviews recent advances in current state-of-the-art of sample preparation and concentration from food matrices with focus on bacterial capturing methods and sensing technologies, along with their advantages and limitations when integrated into microfluidic devices for online rapid detection of pathogens in foods and food production line.
机译:在早期阶段的快速检测食源性病原体是防止食品疾病的爆发,称为对人类健康的严重威胁。常规的食源性病原体检测方法是耗时,艰苦的,病原体诊断竞相差。这促使研究人员呼吁检测方法的现状,并利用新技术进行优越的病原体传感结果。新颖的策略主要依赖于将样品制备中的所有步骤纳入小型化装置中的检测,以便在节省高精度和敏感性的高精度和敏感性的小型化装置中检测。芯片上的实验室是诊断的盛开区域,利用不同的机械和生物学技术来检测食物样品中的非常低浓度的病原体。这是通过简化样品处理和集中程序来实现的,随后将减少人类误差并提高传感方法的准确性。将样品制备技术的整合到这些装置中可以有效地减少复杂食物基质对病原体诊断并提高检测极限的影响。捕获微流体装置上生物受体的病原体的整合是一个关键步骤,可以促进苛刻的化学和物理条件下的识别能力,为食品制造业提供了巨大的商业效益。本文审查了目前最先进的样品制备和来自食物矩阵浓度的最新进展,重点是细菌捕获方法和传感技术,以及集成到用于在线快速检测病原体的微流体装置时的优点和限制食品和食品生产线。

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