College of Precision Instrument and Optoelectronics Engineering, Tianjin University, Tianjin, 300072, China.
Tianjin Institute of Health and Environmental Medicine, A Key Laboratory of Risk Assessment and Control for Environment and Food Safety, Tianjin, 300050, China.
BMC Microbiol. 2021 Jun 28;21(1):197. doi: 10.1186/s12866-021-02223-0.
Microfluidic chip detection technology is considered a potent tool for many bioanalytic applications. Rapid detection of foodborne pathogens in the early stages is imperative to prevent the outbreak of foodborne diseases, known as a severe threat to human health. Conventional bacterial culture methods for detecting foodborne pathogens are time-consuming, laborious, and lacking in pathogen diagnosis. To overcome this problem, we have created an embedded paper-based microchip based on isothermal loop amplification (LAMP), which can rapidly and sensitively detect foodborne pathogens.
We embed paper impregnated with LAMP reagent and specific primers in multiple reaction chambers of the microchip. The solution containing the target pathogen was injected into the center chamber and uniformly distributed into the reaction chamber by centrifugal force. The purified DNA of Escherichia coli O157:H7, Salmonella spp., Staphylococcus aureus, and Vibrio parahaemolyticus has been successfully amplified and directly detected on the microchip. The E. coli O157:H7 DNA was identified as low as 0.0134 ng μL. Besides, the potential of this microchip in point-of-care testing was further tested by combining the on-chip sample purification module and using milk spiked with Salmonella spp.. The pyrolyzed milk sample was filtered through a polydopamine-coated paper embedded in the inside of the sample chamber. It was transported to the reaction chamber by centrifugal force for LAMP amplification. Then direct chip detection was performed in the reaction chamber embedded with calcein-soaked paper. The detection limit of Salmonella spp. in the sample measured by the microchip was approximately 12 CFU mL.
The paper embedded LAMP microchip offers inexpensive, user-friendly, and highly selective pathogen detection capabilities. It is expected to have great potential as a quick, efficient, and cost-effective solution for future foodborne pathogen detection.
微流控芯片检测技术被认为是许多生物分析应用的有力工具。快速检测食源性病原体对于防止食源性疾病的爆发至关重要,因为食源性疾病对人类健康构成严重威胁。传统的细菌培养方法用于检测食源性病原体既费时又费力,且缺乏病原体诊断。为了解决这个问题,我们创建了一种基于等温环扩增(LAMP)的嵌入式纸质微芯片,可以快速、灵敏地检测食源性病原体。
我们将浸渍有 LAMP 试剂和特定引物的纸嵌入微芯片的多个反应室中。将含有目标病原体的溶液注入中心室,并通过离心力将其均匀分布到反应室中。已经成功地在微芯片上扩增和直接检测了大肠杆菌 O157:H7、沙门氏菌、金黄色葡萄球菌和副溶血性弧菌的纯化 DNA。大肠杆菌 O157:H7 的 DNA 被鉴定低至 0.0134ngμL。此外,通过将微芯片上的样品净化模块与用沙门氏菌污染的牛奶结合使用,进一步测试了该微芯片在即时检测中的应用潜力。将热解牛奶样品通过嵌入在样品室内部的聚多巴胺涂层纸过滤。然后通过离心力将其输送到反应室中进行 LAMP 扩增。然后在嵌入有钙黄绿素浸泡纸的反应室中进行直接芯片检测。通过微芯片测量的样品中沙门氏菌的检测限约为 12CFUmL。
嵌入式 LAMP 微芯片提供了廉价、用户友好且高度选择性的病原体检测能力。它有望成为未来食源性病原体检测的快速、高效和具有成本效益的解决方案,具有巨大的潜力。