School of Biosystems Engineering and Food Science, Zhejiang University, 866 Yuhangtang Road, Hangzhou, Zhejiang, 310058, PR China; John A. Paulson School of Engineering and Applied Sciences, Harvard University, Cambridge, MA, 02138, USA.
John A. Paulson School of Engineering and Applied Sciences, Harvard University, Cambridge, MA, 02138, USA; DaAn Gene Co., Ltd. of Guangzhou, 19 Xiangshan Road, Guangzhou, Guangdong, 510665, PR China.
Anal Chim Acta. 2022 Nov 15;1233:340513. doi: 10.1016/j.aca.2022.340513. Epub 2022 Oct 13.
Digital nucleic acid amplification techniques are powerful and attractive approaches for providing sensitive and absolute quantification in biology. Among these, digital loop-mediated isothermal amplification (dLAMP) shows the potential for field detection, since its robustness and independence from thermal cycling. The key of dLAMP is to generate a large number of individual droplets or microwells. However, an auxiliary precision pump is always required for sample digitalization. In addition, current systems for droplet dLAMP usually need to transfer the droplets after digitalization or amplification. Herein, we developed and evaluated a pump-free microfluidic chip for duplex droplet dLAMP (TriD-LAMP) detection. This chip was designed based on step emulsification and contains a droplet generation zone and a droplet storage zone. Droplets are formed through the step due to the difference in Laplace pressure. There are 64 parallel nozzles that could generate tens of thousands of uniform droplets manually (variation <5%). The storage zone for droplets collection was previously filled with oil containing fluorosurfactant that keeps the droplets from fusing and evaporation during the amplification. Therefore, this custom chip is able to perform all stages of the dLAMP process without transferring droplets. Combined with the optimized fluorescent probe method, the chip achieves accurate quantification of the E. coli DNA down to 19.8 copies/μL. As a proof of concept, the simultaneous quantification of two targets was successfully realized on this custom chip. Conclusively, this integrated, pump-free TriD-LAMP chip can provide a promising tool for multiple targets detection in clinical diagnostics and point-of-care applications.
数字核酸扩增技术是提供生物学中敏感和绝对定量的强大而有吸引力的方法。在这些方法中,数字环介导等温扩增(dLAMP)具有现场检测的潜力,因为其稳健性和不依赖于热循环。dLAMP 的关键是产生大量的单个液滴或微井。然而,样品数字化通常需要辅助精密泵。此外,当前用于液滴 dLAMP 的系统通常需要在数字化或扩增后转移液滴。在此,我们开发并评估了一种无泵微流控芯片,用于双液滴 dLAMP(TriD-LAMP)检测。该芯片基于阶跃乳化设计,包含一个液滴生成区和一个液滴存储区。由于拉普拉斯压力的差异,液滴通过阶跃形成。有 64 个平行喷嘴,可以手动生成数万滴均匀的液滴(变化<5%)。用于液滴收集的存储区之前填充有含氟表面活性剂的油,可在扩增过程中防止液滴融合和蒸发。因此,这种定制芯片能够在不转移液滴的情况下执行 dLAMP 过程的所有阶段。结合优化的荧光探针方法,该芯片能够实现大肠杆菌 DNA 的准确定量,低至 19.8 拷贝/μL。作为概念验证,该定制芯片成功实现了两个靶标的同时定量。总之,这种集成的、无泵的 TriD-LAMP 芯片可为临床诊断和即时护理应用中的多个靶标检测提供有前途的工具。