Department of Chemistry, Beijing Key Laboratory of Microanalytical Methods and Instrumentation, MOE Key Laboratory of Bioorganic Phosphorus Chemistry & Chemical Biology, Tsinghua University, Beijing, 100084, China.
Department of Bioengineering, Beijing Technology and Business University, Beijing 100048, China.
Chem Soc Rev. 2021 May 11;50(9):5333-5348. doi: 10.1039/d0cs01516d.
Cell manipulation is the foundation of biochemical studies, which demands user-friendly, multifunctional and precise tools. Based on flow confinement principles, open microfluidics can control the movement of microscale liquid in open space. Every position of the circuit is accessible to external instruments, making it possible to perform precise treatment and analysis of cells at arbitrary target positions especially at the single-cell/sub-cell level. Benefiting from its unique superiority, various manipulations including patterned cell culture, 3D tissue modelling, localized chemical stimulation, online cellular factor analysis, single cell sampling, partial cell treatment, and subcellular free radical attack can be easily realized. In this tutorial review, we summarize two basic ideas to design open microfluidics: open microfluidic networks and probes. The principles of mainstream open microfluidic methods are explained, and their recent important applications are introduced. Challenges and developing trends of open microfluidics are also discussed.
细胞操控是生化研究的基础,需要用户友好、多功能和精确的工具。基于流约束原理,开放式微流控可以在开放空间中控制微尺度液体的运动。微流控通道的每个位置都可以与外部仪器连接,从而可以在任意目标位置(尤其是单细胞/亚细胞水平)对细胞进行精确处理和分析。开放式微流控凭借其独特的优势,可以轻松实现各种操作,包括图案化细胞培养、3D 组织建模、局部化学刺激、在线细胞因子分析、单细胞采样、部分细胞处理和亚细胞自由基攻击。在本综述教程中,我们总结了设计开放式微流控的两个基本思路:开放式微流控网络和探针。解释了主流开放式微流控方法的原理,并介绍了它们最近的重要应用。还讨论了开放式微流控面临的挑战和发展趋势。