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水相微流控技术用于细胞包封。

All-Aqueous-Phase Microfluidics for Cell Encapsulation.

机构信息

Department of Electronic Science and Technology , University of Science and Technology of China , Hefei 230027 , China.

School of Electrical and Information Engineering, Suzhou Institute of Technology , Jiangsu University of Science and Technology , Zhangjiagang 215600 , China.

出版信息

ACS Appl Mater Interfaces. 2019 Feb 6;11(5):4826-4832. doi: 10.1021/acsami.8b19234. Epub 2019 Jan 23.

Abstract

Cell-laden hydrogel microcarriers are widely used in diverse biomedical applications like three-dimensional (3D) cell culture, cellular therapy, and tissue engineering, where microcarriers were generally produced by oil, which is the common but not optimal choice, as oil may cause cytotoxicity or protein denaturation. Here, an all-aqueous-phase microfluidics is presented to achieve oil-free emulsification of cell-laden microcapsules and 3D cell culture. Aqueous solutions with different concentration gradients are used as an immiscible continuous phase and a dispersed phase, and oscillation from a solenoid valve facilitates the formation of microcapsules at the water-water interface. By adjusting aqueous-phase flow rates and oscillating frequencies, core-shell microcapsules with controllable structures can be stably and continuously generated. In further 3D cell culture, encapsulated cells maintained good viabilities and aggregated together. These features show that the oil-free microfluidic method may have broad prospects in many biomedical applications.

摘要

载细胞水凝胶微球广泛应用于各种生物医学领域,如三维(3D)细胞培养、细胞治疗和组织工程。通常,微球是通过油来制备的,但油并不是最佳选择,因为它可能会导致细胞毒性或蛋白质变性。在这里,我们提出了一种全水相微流控方法,以实现无油载细胞微胶囊的乳化和 3D 细胞培养。不同浓度梯度的水溶液分别用作不混溶的连续相和分散相,通过电磁阀的振荡促进了在水-水界面处形成微胶囊。通过调节水相流速和振荡频率,可以稳定连续地生成具有可控结构的核壳微胶囊。在进一步的 3D 细胞培养中,包封的细胞保持良好的活力并聚集在一起。这些特性表明,无油微流控方法在许多生物医学应用中可能具有广阔的前景。

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