Ha Noel S, de Raad Markus, Han La Zhen, Golini Amber, Petzold Christopher J, Northen Trent R
Biological Systems and Engineering, Lawrence Berkeley National Laboratory Berkeley CA USA
US Department of Energy Joint BioEnergy Institute Emeryville CA USA.
RSC Chem Biol. 2021 Jul 20;2(5):1331-1351. doi: 10.1039/d1cb00112d. eCollection 2021 Oct 7.
High-throughput screening technologies are widely used for elucidating biological activities. These typically require trade-offs in assay specificity and sensitivity to achieve higher throughput. Microfluidic approaches enable rapid manipulation of small volumes and have found a wide range of applications in biotechnology providing improved control of reaction conditions, faster assays, and reduced reagent consumption. The integration of mass spectrometry with microfluidics has the potential to create high-throughput, sensitivity, and specificity assays. This review introduces the widely-used mass spectrometry ionization techniques that have been successfully integrated with microfluidics approaches such as continuous-flow system, microchip electrophoresis, droplet microfluidics, digital microfluidics, centrifugal microfluidics, and paper microfluidics. In addition, we discuss recent applications of microfluidics integrated with mass spectrometry in single-cell analysis, compound screening, and the study of microorganisms. Lastly, we provide future outlooks towards online coupling, improving the sensitivity and integration of multi-omics into a single platform.
高通量筛选技术被广泛用于阐明生物活性。这些技术通常需要在检测特异性和灵敏度之间进行权衡,以实现更高的通量。微流控方法能够快速处理小体积样品,并在生物技术领域有广泛应用,可改善反应条件的控制、加快检测速度并减少试剂消耗。质谱与微流控技术的整合有潜力创建高通量、高灵敏度和高特异性的检测方法。本文综述了已成功与微流控方法(如连续流动系统、微芯片电泳、液滴微流控、数字微流控、离心微流控和纸基微流控)整合的广泛使用的质谱电离技术。此外,我们还讨论了微流控与质谱联用在单细胞分析、化合物筛选和微生物研究中的最新应用。最后,我们对在线耦合、提高灵敏度以及将多组学整合到单个平台方面给出了未来展望。