Institute of Technical Chemistry, Leibniz University Hannover, Hannover, Germany.
Multiscale Bioengineering, Faculty of Technology, Bielefeld University, Bielefeld, Germany.
Adv Biochem Eng Biotechnol. 2022;179:1-16. doi: 10.1007/10_2022_206.
Microfluidics has emerged as a powerful tool, enabling biotechnological processes to be performed on a microscale where certain physical processes (such as laminar flow, surface-to-volume ratio, and surface interactions) become dominant factors. At the same time, volumes and assay times are also reduced in microscale - which can substantially lower experimental costs. A decade ago, most microfluidic systems were only used for proof-of-concept studies; today, a wide array of microfluidic systems have been deployed to tackle various biotechnological research questions - especially regarding the analysis, screening, and understanding of cellular systems. Examples cover all biotechnological areas, from diagnostic applications in the field of medical biotechnology to the screening of potentially useful cells in the field of industrial biotechnology. As part of this review, we provide a brief introduction to microfluidics technology (including the vision of Lab-on-a-chip (LOC) systems) and survey some of the most notable applications of microfluidic technology in biotechnology to date.
微流控技术已经成为一种强大的工具,能够在微尺度上进行生物技术过程,其中某些物理过程(如层流、表面积与体积比和表面相互作用)成为主导因素。同时,微尺度也减少了体积和分析时间 - 这可以大大降低实验成本。十年前,大多数微流控系统仅用于概念验证研究;如今,已经部署了各种微流控系统来解决各种生物技术研究问题 - 特别是涉及细胞系统的分析、筛选和理解。这些例子涵盖了从医疗生物技术领域的诊断应用到工业生物技术领域有潜在用途的细胞筛选的所有生物技术领域。作为本综述的一部分,我们简要介绍了微流控技术(包括芯片实验室 (LOC) 系统的愿景),并调查了迄今为止微流控技术在生物技术中的一些最显著应用。