Yu Zhichao, Qiu Chicheng, Huang Lingting, Gao Yuan, Tang Dianping
Key Laboratory of Analytical Science for Food Safety and Biology (MOE & Fujian Province), Department of Chemistry, Fuzhou University, Fuzhou 350108, People's Republic of China.
Zijin School of Geology and Mining, Fuzhou University, Fuzhou 350108, People's Republic of China.
Anal Chem. 2023 Feb 28;95(8):4212-4219. doi: 10.1021/acs.analchem.2c05617. Epub 2023 Feb 13.
Accurate identification of acutely toxic and low-fatality mycotoxins on a large scale in a quick and cheap manner is critical for reducing population mortality. Herein, a portable photothermal immunosensing platform supported by a microelectromechanical microsystem (MEMS) without enzyme involvement was reported for point-of-care testing of mycotoxins (in the case of aflatoxin B, AFB) in food based on the precise satellite structure of Au nanoparticles. The synthesized Au nanoparticles with a well-defined, graded satellite structure exhibited a significantly enhanced photothermal response and were coupled by AFB antibodies to form signal conversion probes by physisorption for further target-promoted competitive responses in microplates. In addition, a coin-sized miniature NIR camera device was constructed for temperature acquisition during target testing based on advanced MEMS fabrication technology to address the limitation of expensive signal acquisition components of current photothermal sensors. The proposed MEMS readout-based microphotothermal test method provides excellent AFB response in the range of 0.5-500 ng g with detection limits as low as 0.27 ng g. In addition, the main reasons for the efficient photothermal transduction efficiency of Au with different graded structures were analyzed by finite element simulations, providing theoretical guidance for the development of new Au-based photothermal agents. In conclusion, the proposed portable micro-photothermal test system offers great potential for point-of-care diagnostics for residents, which will continue to facilitate immediate food safety identification in resource-limited regions.
快速、廉价且大规模地准确识别急性毒性和低致死率的霉菌毒素对于降低人口死亡率至关重要。在此,报道了一种由微机电微系统(MEMS)支持的便携式光热免疫传感平台,该平台无需酶参与,基于金纳米颗粒精确的卫星结构用于食品中霉菌毒素(以黄曲霉毒素B,AFB为例)的即时检测。合成的具有明确分级卫星结构的金纳米颗粒表现出显著增强的光热响应,并通过AFB抗体偶联,通过物理吸附形成信号转换探针,用于在微孔板中进一步进行目标促进的竞争反应。此外,基于先进的MEMS制造技术构建了一个硬币大小的微型近红外相机装置,用于在目标检测过程中采集温度,以解决当前光热传感器昂贵的信号采集组件的局限性。所提出的基于MEMS读出的微光热测试方法在0.5 - 500 ng g范围内对AFB具有出色的响应,检测限低至0.27 ng g。此外,通过有限元模拟分析了具有不同分级结构的金实现高效光热转换效率的主要原因,为新型金基光热剂的开发提供了理论指导。总之,所提出的便携式微光热测试系统为居民的即时诊断提供了巨大潜力,这将继续促进资源有限地区的即时食品安全识别。