INSERM UMR-S1147, CNRS SNC5014, Paris Descartes University, Equipe labellisée Ligue Nationale contre le cancer, Paris, France.
INSERM UMR-S1147, CNRS SNC5014, Paris Descartes University, Equipe labellisée Ligue Nationale contre le cancer, Paris, France.
Trends Biotechnol. 2017 Aug;35(8):713-727. doi: 10.1016/j.tibtech.2017.05.004. Epub 2017 Jun 17.
Most cell studies are performed at a population level, relying on the assumption of a normal distribution of the function and fate of a cell among a population. However, technologies allowing single-cell analysis (SCA) have recently arisen and have led to increasing evidence of cell population heterogeneity and its importance. Tremendous amounts of new data could now be uncovered to redefine our understanding of cell omics. Microfluidics has emerged as a major technological player in this new era and is gradually increasing in use among biology laboratories, mainly due to the single-cell high-throughput handling solutions it offers. In this review, we assess its use and relevance for omics analysis at the single-cell level, with a specific focus on compartment-based microfluidic approaches.
大多数细胞研究都是在群体水平上进行的,这依赖于一个假设,即细胞的功能和命运在群体中呈正态分布。然而,最近出现了允许单细胞分析 (SCA) 的技术,这些技术增加了细胞群体异质性及其重要性的证据。现在,大量新的数据可以被揭示出来,从而重新定义我们对细胞组学的理解。微流控技术在这个新时代成为了一个主要的技术参与者,并且在生物学实验室中的使用也在逐渐增加,主要是因为它提供了单细胞高通量处理解决方案。在这篇综述中,我们评估了它在单细胞水平上的组学分析中的使用和相关性,特别关注基于隔室的微流控方法。