The Key Laboratory for Biomedical Photonics of MOE at Wuhan National Laboratory for Optoelectronics - Hubei Bioinformatics & Molecular Imaging Key Laboratory, Systems Biology Theme, Department of Biomedical Engineering, College of Life Science and Technology, Huazhong University of Science and Technology, Wuhan 430074, China.
School of Biological Engineering, Huainan Normal University, Huainan, Anhui 232038, China.
Analyst. 2022 May 30;147(11):2433-2441. doi: 10.1039/d2an00430e.
The outbreak of global infectious diseases has posed a significant threat to public health, requiring the rapid and accurate diagnosis of pathogens promptly for the society to implement immediate control measures to prevent widespread pandemics. In this work, a magnet-actuated microfluidic array chip (MMAC) is developed with integrated sample processing and nucleic acid amplification for the rapid detection of multiple pathogens by loop-mediated isothermal amplification. In comparison to previous works, where fluid control was dependent on external equipment or finger-based manual pressing, the fluid control of the MMAC is realized by magnetically actuating a ferric oxide (FeO) doped polydimethylsiloxane (PDMS) layer that separates the sample from the LAMP reagent in a high-throughput manner, which not only reduces the complexity of fluid control but also enhances the repeatability of detection by eliminating variations in operation by different users. Examination with a testing sample containing and showed high specificity for pathogen detection without cross-contamination. The lowest detection concentration was 5.2 copies per μL for with a detection time of 60 min. The proposed method demonstrated the simultaneous detection of multiple pathogens, which is potentially helpful in applications of immediate diagnosis.
全球传染病的爆发对公共卫生构成了重大威胁,需要迅速准确地诊断病原体,以便社会能够立即采取控制措施,防止广泛的大流行。在这项工作中,开发了一种基于磁驱动的微流控阵列芯片 (MMAC),通过环介导等温扩增实现了对多种病原体的快速检测,具有集成的样本处理和核酸扩增功能。与之前的工作相比,以前的流体控制依赖于外部设备或基于手指的手动按压,而 MMAC 的流体控制是通过磁性驱动氧化铁 (FeO) 掺杂的聚二甲基硅氧烷 (PDMS) 层来实现的,该层以高通量的方式将样品与 LAMP 试剂分离,这不仅降低了流体控制的复杂性,而且通过消除不同用户操作的变化提高了检测的可重复性。使用包含 和 的测试样本进行检查,对病原体检测具有高度特异性,没有交叉污染。对于 ,最低检测浓度为 5.2 拷贝/μL,检测时间为 60 分钟。该方法还展示了对多种病原体的同时检测,这在即时诊断应用中具有潜在的帮助。