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An integrated microfluidic flow-focusing platform for on-chip fabrication and filtration of cell-laden microgels

机译:用于片上制造和筛分微凝胶的整体微流体流动聚焦平台

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摘要

We present the development of a stable continuous, and integrated microfluidic platform for the high-throughput fabrication of monodisperse cell-laden microgel droplets with high and maintained cellular viability. This is through combining onto one chip all the required processes from the droplet generation in a flow focusing microfluidic junction passing through on-chip photocrosslinking to the separation of the droplets from the continuous oil phase. To avoid cellular aggregation during the droplet generation process, cells were treated with bovine serum albumin (BSA) before mixing with gelatin methacrylate (GelMA). And, a magnetic mixer was applied to the GelMA prepolymer-cell suspension syringe to eliminate cell sedimentation. These approaches resulted in having a reasonable distribution of cells among monodisperse microdroplets. The microdroplets were irradiated with a 405 nm wavelength laser beam while passing through the crosslinking chamber of the microfluidic device. The produced microgels enter the filtration unit of the same device where they were gently separated from the oil phase into the washing buffer aqueous solution of Tween 80 using the filter microposts array. The viability of the encapsulated cells was around 85% at day 1 and was maintained throughout 5 days. Using this method of controlling cell encapsulation with on-chip crosslinking and oil filtration, highly efficient cell-laden microgel production is achieved. The presented integrated microfluidic platform can be a candidate for standard cell-encapsulation experiments and other tissue engineering applications.
机译:我们展示了稳定的连续和集成的微流体平台,用于高通量的细胞载量微凝胶液滴具有高和维持的细胞活力。这是通过组合到一个芯片上的所有所需工艺,从液滴产生微流体结通过片上光源的微流体连接到从连续油相的分离。为了避免在液滴生成过程中的细胞聚集,在与明胶甲基丙烯酸酯(GELMA)混合之前用牛血清白蛋白(BSA)处理细胞。并且,将磁力混合器施加到凝胶剂预聚物 - 细胞悬浮注射器上以消除细胞沉降。这些方法导致单分散微型电池之间具有合理的细胞分布。通过微流体装置的交联室,用405nm波长激光束照射微量折叠。所生产的微凝胶进入相同装置的过滤单元,其中使用过滤微孔阵列将它们从油相分离成水相的洗涤缓冲水溶液。在第1天,包封细胞的可行性约为85%,并在整个5天内保持。使用这种控制细胞包封的方法,通过片上交联和滤油,实现了高效的细胞载量的微凝胶产生。所呈现的集成微流体平台可以是标准电池封装实验和其他组织工程应用的候选者。

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