Graduate Program in Biomedical Engineering, Ryerson University, Toronto, Canada.
Lab Chip. 2018 Nov 6;18(22):3361-3370. doi: 10.1039/c8lc00867a.
Droplet microfluidics enables cellular encapsulation for biomedical applications such as single-cell analysis, which is an important tool used by biologists to study cells on a single-cell level, and understand cellular heterogeneity in cell populations. However, most cell encapsulation strategies in microfluidics rely on random encapsulation processes, resulting in large numbers of empty droplets. Therefore, post-sorting of droplets is necessary to obtain samples of purely cell-encapsulating droplets. With the recent advent of aqueous two-phase systems (ATPS) as a biocompatible alternative of the conventional water-in-oil droplet systems for cellular encapsulation, there has also been a focus on integrating ATPS with droplet microfluidics. In this paper, we describe a new technique that combines ATPS-based water-in-water droplets with diamagnetic manipulation to isolate single-cell encapsulating water-in-water droplets, and achieve a purity of 100% in a single pass. We exploit the selective partitioning of ferrofluid in an ATPS of polyethylene glycol-polypropylene glycol-polyethylene glycol triblock copolymer (PEG-PPG-PEG) and dextran (DEX), to achieve diamagnetic manipulation of water-in-water droplets. A cell-triggered Rayleigh-Plateau instability in the dispersed phase thread results in a size distinction between the cell-encapsulating and empty droplets, enabling diamagnetic separation and sorting of the cell-encapsulating droplets from empty droplets. This is a simple and biocompatible all-aqueous platform for single-cell encapsulation and droplet manipulation, with applications in single-cell analysis.
液滴微流控技术可用于细胞封装,在生物医学领域有广泛应用,例如单细胞分析。这是生物学家在单细胞水平上研究细胞、了解细胞群体中细胞异质性的重要工具。然而,微流控中的大多数细胞封装策略依赖于随机封装过程,导致大量空液滴的产生。因此,需要对液滴进行后分选,以获得纯细胞封装液滴的样本。随着最近水相双相体系 (ATPS) 作为传统油包水液滴系统的生物相容性替代物用于细胞封装,人们也越来越关注将 ATPS 与液滴微流控技术结合。在本文中,我们描述了一种新技术,该技术将基于 ATPS 的水包水液滴与抗磁性操纵相结合,以分离单个细胞封装的水包水液滴,并在单次通过中实现 100%的纯度。我们利用铁磁流体在聚乙二醇-聚丙二醇-聚乙二醇三嵌段共聚物 (PEG-PPG-PEG) 和葡聚糖 (DEX) 的 ATPS 中的选择性分配,实现了水包水液滴的抗磁性操纵。分散相线程中的细胞触发的瑞利-普兰特尔不稳定性导致细胞封装液滴和空液滴之间的尺寸区别,从而能够从空液滴中进行抗磁性分离和分选细胞封装液滴。这是一种简单且生物相容的全水相单细胞封装和液滴操纵平台,在单细胞分析中有应用前景。