Cai Gangpei, Huang Yuxin, Chen Bailiang, Shen Yuemin, Shi Xiaolu, Peng Bo, Mi Shengli, Huang Jiajun
Bio-manufacturing Engineering Laboratory, Tsinghua Shenzhen International Graduate School, Tsinghua University, Shenzhen, Guangdong, China; Shenzhen Disiontech Bio-Meditech Co., Ltd., Shenzhen, 518055, Guangdong, China.
Bio-manufacturing Engineering Laboratory, Tsinghua Shenzhen International Graduate School, Tsinghua University, Shenzhen, Guangdong, China.
Talanta. 2023 Jul 1;259:124486. doi: 10.1016/j.talanta.2023.124486. Epub 2023 Apr 11.
Modular integration of functional components on the chip and increasement in control accuracy through real-time alteration in the force direction of droplets is an effective way to optimize centrifugal microfluidic systems and realize passive components, compact modules, and high-throughput control. Conventional centrifugal microfluidic chips are mainly driven and controlled by centrifugal force and Euler force. The control valves are easily affected by machining precision, making the control unstable. In this study, a novel centrifugal microfluidic system is introduced to improve the freedom and accuracy of chip control while facilitating the design and addition of passive functional components. Furthermore, we modularize the centrifugal microfluidic chip to greatly shorten the period of design and optimization cycle and achieve chip reusability and multi-threaded control. Finally, to verify the feasibility of the modular centrifugal microfluidic chip applied to high-throughput nucleic acid screening, we test the nucleic acid purification and detection colorimetric reactions based on the modular centrifugal microfluidic chip. Among them, Chelex-100 is used to realize the purification of nucleic acid in cell lysate, and the purified solution can realize amplification in the PCR instrument, and the nucleic acid detection results are consistent with the off-chip kit by experimental testing. The system has great flexibility and stability under the acceptable purity of nucleic acid, which indicates that the platform has great potential for large-scale rapid screening applications.
芯片上功能组件的模块化集成以及通过实时改变液滴的力方向来提高控制精度,是优化离心微流控系统并实现无源组件、紧凑模块和高通量控制的有效方法。传统的离心微流控芯片主要由离心力和欧拉力驱动和控制。控制阀很容易受到加工精度的影响,导致控制不稳定。在本研究中,引入了一种新型离心微流控系统,以提高芯片控制的自由度和精度,同时便于无源功能组件的设计和添加。此外,我们对离心微流控芯片进行模块化,以大大缩短设计周期和优化周期,并实现芯片的可重复使用性和多线程控制。最后,为了验证模块化离心微流控芯片应用于高通量核酸筛选的可行性,我们基于模块化离心微流控芯片测试了核酸纯化和检测比色反应。其中,使用Chelex-100实现细胞裂解液中核酸的纯化,纯化后的溶液可在PCR仪中实现扩增,通过实验测试,核酸检测结果与芯片外试剂盒一致。在可接受的核酸纯度下,该系统具有很大的灵活性和稳定性,这表明该平台在大规模快速筛选应用方面具有巨大潜力。