Shu Bowen, Lin Ling, Wu Bin, Huang Enqi, Wang Yu, Li Zhujun, He Haoyan, Lei Xiuxia, Xu Banglao, Liu Dayu
Department of Laboratory Medicine, Guangzhou First People's Hospital, School of Medicine, South China University of Technology, Guangzhou, 510180, China; Clinical Molecular Medicine and Molecular Diagnosis Key Laboratory of Guangdong Province, Guangzhou, 510180, China; Guangdong Engineering Technology Research Center of Microfluidic Chip Medical Diagnosis, Guangzhou, 510180, China.
Department of Laboratory Medicine, Guangzhou First People's Hospital, School of Medicine, South China University of Technology, Guangzhou, 510180, China.
Biosens Bioelectron. 2021 Jun 1;181:113145. doi: 10.1016/j.bios.2021.113145. Epub 2021 Mar 10.
Rapid screening of infectious pathogens at the point-of-care (POC) is ideally low-cost, portable, easy to use, and capable of multiplex detection with high sensitivity. However, satisfying all these features in a single device without compromise remains a challenging task. Here, we introduce an ultraportable, automated RNA amplification testing device that allows rapid screening of infectious pathogens from clinical samples. In this device, 3D-printed structural parts incorporated with off-the-shelf mechanic/electronic components are utilized to create an inexpensive and automated droplet manipulation platform. On this platform, a simple configuration that couples a linear displacement of the chip with a tunable magnet array allows parallel and versatile droplet operations, including mixing, splitting, transporting, and merging. By exploiting a multi-channel droplet array chip to preload necessary reagents in "water-in-oil" format, bacteria lysis, RNA extraction and amplification are seamlessly integrated and implemented by the combination of droplet operations. Furthermore, visual readout and geometrically-multiplexed quantitative detection are provided by an integrated wireless video camera-enabled wide-field fluorescence imaging. We demonstrated that this droplet-based device could have a shorter RNA extraction time (12 min) and lower detection limits for pathogenic RNA (approaching to 10 copies per reaction). We also verified its clinical applicability for the rapid screening of four sexually transmitted pathogens from urine specimens. Results show that the sample-to-answer assay could be completed in approximately 42 min, with 100% concordance with the laboratory-based molecular testing. The exhibiting features may render this microdevice an easily accessible POC molecular diagnostic platform for infectious disease, especially in resource-limited settings.
即时检测(POC)中对传染性病原体的快速筛查理想情况下应具备低成本、便携、易于使用且能够进行高灵敏度多重检测的特点。然而,在单个设备中不打折扣地满足所有这些特性仍然是一项具有挑战性的任务。在此,我们介绍一种超便携式自动化RNA扩增检测设备,它能够对临床样本中的传染性病原体进行快速筛查。在该设备中,3D打印的结构部件与现成的机械/电子元件相结合,用于创建一个低成本的自动化液滴操控平台。在这个平台上,一种将芯片的线性位移与可调谐磁体阵列相结合的简单配置允许进行并行且通用的液滴操作,包括混合、分割、运输和合并。通过利用多通道液滴阵列芯片以“油包水”形式预加载必要试剂,细菌裂解、RNA提取和扩增通过液滴操作的组合得以无缝集成和实现。此外,集成的带无线摄像机的宽场荧光成像提供了视觉读数和几何多重定量检测。我们证明了这种基于液滴的设备能够实现更短的RNA提取时间(12分钟)以及对致病RNA更低的检测限(接近每个反应10个拷贝)。我们还验证了其在从尿液标本中快速筛查四种性传播病原体方面的临床适用性。结果表明,从样本到得出结果的检测大约可在42分钟内完成,与基于实验室的分子检测结果100%一致。所展示的这些特性可能使这种微型设备成为一种易于获取的用于传染病的即时检测分子诊断平台,特别是在资源有限的环境中。