微流控
细胞
细胞培养
三维细胞培养
生物物理学
材料科学
单细胞分析
纳米技术
细胞包封
间充质干细胞
化学
细胞生物学
生物
生物化学
遗传学
作者
Tom Kamperman,Sieger Henke,Claas Willem Visser,Marcel Karperien,Jeroen Leijten
出处
期刊:Small
[Wiley]
日期:2017-04-28
卷期号:13 (22): 1603711-1603711
被引量:63
标识
DOI:10.1002/smll.201603711
摘要
Single-cell-laden microgels support physiological 3D culture conditions while enabling straightforward handling and high-resolution readouts of individual cells. However, their widespread adoption for long-term cultures is limited by cell escape. In this work, it is demonstrated that cell escape is predisposed to off-center encapsulated cells. High-speed microscopy reveals that cells are positioned at the microgel precursor droplets' oil/water interface within milliseconds after droplet formation. In conventional microencapsulation strategies, the droplets are typically gelled immediately after emulsification, which traps cells in this off-center position. By delaying crosslinking, driving cells toward the centers of microgels is succeeded. The centering of cells in enzymatically crosslinked microgels prevents their escape during at least 28 d. It thereby uniquely enables the long-term culture of individual cells within <5-µm-thick 3D uniform hydrogel coatings. Single cell analysis of mesenchymal stem cells in enzymatically crosslinked microgels reveals unprecedented high cell viability (>90%), maintained metabolic activity (>70%), and multilineage differentiation capacity (>60%) over a period of 28 d. The facile nature of this microfluidic cell-centering method enables its straightforward integration into many microencapsulation strategies and significantly enhances control, reproducibility, and reliability of 3D single cell cultures.
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