高通量生成用于大规模单细胞封装的微流控模板微凝胶

Haoyue Zhang, Chengze Li, Yujie Zhang, Chuanfeng An, Hanting Li, Jiahui Yu, Yonghao Zhang, Wei He, Huanan Wang
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引用次数: 2

摘要

基于微流体的载细胞微凝胶制备在细胞治疗和组织工程中显示出巨大的应用潜力,然而,由于细胞沉淀和通道堵塞,芯片操作困难和细胞活力受损仍然是制备功能性载细胞微胶的主要挑战。在此,我们提出了集成微流控芯片的设计和优化,用于大规模制备尺寸可控、微观结构复杂的载细胞微凝胶。具体来说,为了避免平行微通道中严重的细胞沉积和不均匀分布,我们使用计算流体动力学模拟来模拟细胞的运动状态。研究发现,较高的层流速度梯度和较高的前驱体粘度可以显著改善平行通道中细胞的均匀分布,并减少通道之间的产物差异。此外,我们设计了多层微流体芯片,允许多种输入液体用于制造具有复杂结构的微凝胶。这种集成芯片有助于以240ml/h的最大细胞悬浮液生产速率进行细胞封装,并保留了细胞活力和功能。因此,我们的研究为大规模制备载有细胞的微凝胶提供了一种生物相容性和高通量的策略,这可以使载有细胞的小凝胶的临床相关应用取得重大进展,包括细胞治疗、组织再生和3D生物打印。
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High-throughput generation of microfluidic-templating microgels for large-scale single-cell encapsulation
Microfluidics-based fabrication of cell-laden microgels has shown great potential for applications in cell therapy and tissue engineering, however, the difficulty in chip operation and compromised cell viability due to cell sedimentation and channel blockage remain a major challenge for functional cell-laden microgels preparation. Herein, we presented the design and optimization of integrated microfluidic chip for large-scale preparation of cell-laden microgels with controllable size and complex microstructure. Specifically, to avoid severe cell sedimentation and uneven distribution in the parallelized microchannel, we simulated cell movement state using computational fluid dynamics simulation. It was found that higher laminar flow velocity gradient and higher precursor viscosity can significantly improve the uniform cell distribution in parallelized channels and reduce the product difference between channels. Moreover, we designed multiple-layered microfluidic chips allowing multiple inputting liquids for the fabrication of microgels with complex structures. This integrated chip facilitated cell encapsulation at a maximum production rate of 240 ml/h of cell suspension with retained cell viability and functionality. Therefore, our study provided a biocompatible and high-throughput strategy for large-scale preparation of cell-laden microgels, which can enable significant advances for clinical-relevant applications of cell-laden microgels, including cell therapy, tissue regeneration and 3D bioprinting.
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