Department of Biomedical Engineering, The Chinese University of Hong Kong, Shatin, Hong Kong, China.
Shenzhen Research Institute, The Chinese University of Hong Kong, Shenzhen 518172, China.
Nano Lett. 2020 May 13;20(5):3207-3216. doi: 10.1021/acs.nanolett.9b05315. Epub 2020 May 4.
A physical, noninvasive, and reversible means of controlling the nanoscale presentation of bioactive ligands is highly desirable for regulating and investigating the time-dependent responses of cells, including stem cells. Herein we report a magnetically actuated dynamic cell culture platform consisting of a soft hydrogel substrate conjugated with RGD-bearing magnetic nanoparticle (RGD-MNP). The downward/upward magnetic attraction conceals/promotes the presentation of the RGD-MNP in/on the soft hydrogel matrix, thereby inhibiting/enhancing the cell adhesion and mechanosensing-dependent differentiation. Meanwhile, the lateral magnetic attraction promotes the unidirectional migration of cells in the opposite direction on the hydrogel. Furthermore, cyclic switching between the "Exposed" and "Hidden" conditions induces the repeated cycles of differentiation/dedifferentiation of hMSCs which significantly enhances the differentiation potential of hMSCs. Our design approach capitalizes on the bulk biomaterial matrix as the macroscopic caging structure to enable dynamic regulation of cell-matrix interactions reversibly, which is hard to achieve by using conventional cell culture systems.
一种物理的、非侵入式的、可还原的控制生物活性配体的纳米级呈现的方法对于调控和研究细胞(包括干细胞)的时变响应是非常理想的。在此,我们报告了一种由软水凝胶基底和带有 RGD 的磁性纳米颗粒(RGD-MNP)组成的磁驱动动态细胞培养平台。向下/向上的磁吸引力隐藏/促进了 RGD-MNP 在软水凝胶基质中的呈现/隐藏,从而抑制/增强细胞的黏附和机械敏感性分化。同时,侧向磁吸引力促进细胞在水凝胶上朝着相反方向的单向迁移。此外,在“暴露”和“隐藏”状态之间进行循环切换,诱导 hMSC 的分化/去分化的反复循环,这显著增强了 hMSC 的分化潜能。我们的设计方法利用大块生物材料基质作为宏观的笼状结构,能够可逆地动态调控细胞-基质相互作用,这是传统细胞培养系统难以实现的。