Instituto de Engenharia de Sistemas e Computadores - Microsistemas e Nanotecnologias (INESC MN) and IN - Institute of Nanoscience and Nanotechnology, Lisbon, Portugal; IBB - Institute for Bioengineering and Biosciences, Instituto Superior Técnico, Universidade de Lisboa, Lisbon, Portugal.
Instituto de Engenharia de Sistemas e Computadores - Microsistemas e Nanotecnologias (INESC MN) and IN - Institute of Nanoscience and Nanotechnology, Lisbon, Portugal.
Biosens Bioelectron. 2017 Jan 15;87:823-831. doi: 10.1016/j.bios.2016.09.041. Epub 2016 Sep 12.
For a point-of-use analytical device to be successful in real-world applications, it needs to be rapid, simple to operate and, ideally, able to multiplex the detection of several analytes and samples. Mycotoxin detection in food and feedstock in particular has become increasingly relevant as these toxins, such as ochratoxin A (OTA), aflatoxin B1 (AFB1) and deoxynivalenol (DON), are subject to strict regulations and recommendations in the European Union. A novel, simple, negative pressure-driven device with manually operated magnetic valves was developed and the simultaneous immunodetection of these three mycotoxins was demonstrated via the laminar flow patterning of probes in an area of ≈0.12mm and subsequent chemiluminescence generation via HRP-labeled antibodies. The three mycotoxins were detected in less than 20min at concentrations of 100ng/mL for OTA and DON and 3ng/mL for AFB1, spiked in a sample under analysis and simultaneously compared to a toxin-free reference and a standard contaminated with critical target concentrations. The on-chip optical detection was performed in a single acquisition step by integrating a microfabricated array of 25×25µm hydrogenated amorphous silicon (a-Si:H) photosensors below the microfluidic chip. The device presented in this work is simple and effective for point-of-use multiplexing of immunoassays and was applied in this work to the screening of mycotoxins.
为了使即时分析设备在实际应用中取得成功,它需要快速、操作简单,并且能够实现对多种分析物和样本的多重检测。特别是在食品和饲料中真菌毒素的检测变得越来越重要,因为这些毒素,如赭曲霉毒素 A(OTA)、黄曲霉毒素 B1(AFB1)和脱氧雪腐镰刀菌烯醇(DON),在欧盟受到严格的法规和建议的限制。本研究开发了一种新颖的、简单的、采用手动操作磁阀的负压驱动装置,并通过在约 0.12mm 的区域内对探针进行层流图案化,以及通过 HRP 标记的抗体进行化学发光生成,展示了对这三种真菌毒素的同时免疫检测。在分析物中添加 100ng/mL 的 OTA 和 DON 以及 3ng/mL 的 AFB1 后,该三种真菌毒素在不到 20min 的时间内被检测到,同时与无毒素参考物和标准物进行了比较,标准物中含有关键目标浓度的毒素。芯片上的光学检测是通过在微流控芯片下方集成一个 25×25µm 的氢化非晶硅(a-Si:H)光电传感器微制造阵列,在单个采集步骤中完成的。本工作中提出的设备简单有效,可用于即时多重免疫分析,并在本工作中应用于真菌毒素的筛选。