Wang Ben, Chan Kai Fung, Ji Fengtong, Wang Qianqian, Chiu Philip Wai Yan, Guo Zhiguang, Zhang Li
Department of Mechanical and Automation Engineering The Chinese University of Hong Kong Hong Kong China.
Department of Biomedical Engineering The Chinese University of Hong Kong Hong Kong China.
Adv Sci (Weinh). 2019 Mar 14;6(10):1802033. doi: 10.1002/advs.201802033. eCollection 2019 May 17.
Coalescence and splitting of liquid marbles (LMs) are critical for the mixture of precise amount precursors and removal of the wastes in the microliter range. Here, the coalescence and splitting of LMs are realized by a simple gravity-driven impact method and the two processes are systematically investigated to obtain the optimal parameters. The formation, coalescence, and splitting of LMs can be realized on-demand with a designed channel box. By selecting the functional channels on the device, gravity-based fusion and splitting of LMs are performed to mix medium/drugs and remove spent culture medium in a precise manner, thus ensuring that the microenvironment of the cells is maintained under optimal conditions. The LM-based 3D stem cell spheroids are demonstrated to possess an approximately threefold of cell viability compared with the conventional spheroid obtained from nonadhesive plates. Delivery of the cell spheroid to a hydrophilic surface results in the in situ respreading of cells and gradual formation of typical 2D cell morphology, which offers the possibility for such spheroid-based stem cell delivery in regenerative medicine.
液体弹珠(LMs)的聚结和分裂对于精确量前体的混合以及微升范围内废物的清除至关重要。在此,通过一种简单的重力驱动撞击方法实现了LMs的聚结和分裂,并对这两个过程进行了系统研究以获得最佳参数。利用设计的通道盒可以按需实现LMs的形成、聚结和分裂。通过选择装置上的功能通道,基于重力对LMs进行融合和分裂,以精确混合培养基/药物并去除用过的培养基,从而确保细胞的微环境维持在最佳条件下。结果表明,与从非粘附板获得的传统球体相比,基于LM的3D干细胞球体的细胞活力大约高三倍。将细胞球体递送至亲水性表面会导致细胞原位重新铺展并逐渐形成典型的二维细胞形态,这为基于球体的干细胞在再生医学中的递送提供了可能性。