Biomaterials Innovation Research Center, Department of Medicine, Brigham and Women's Hospital , Harvard Medical School , Cambridge , Massachusetts 02139 , United States.
Harvard-MIT Division of Health Sciences and Technology , Massachusetts Institute of Technology , 77 Massachusetts Avenue , Cambridge , Massachusetts 02139 , United States.
ACS Appl Mater Interfaces. 2018 Apr 25;10(16):13293-13303. doi: 10.1021/acsami.7b17991. Epub 2018 Apr 13.
Biophysical cues can potently direct a cell's or tissue's behavior. Cells interpret their biophysical surroundings, such as matrix stiffness or dynamic mechanical stimulation, through mechanotransduction. However, our understanding of the various aspects of mechanotransduction has been limited by the lack of proper analysis platforms capable of screening three-dimensional (3D) cellular behaviors in response to biophysical cues. Here, we developed a dynamic compression bioreactor to study the combinational effects of biomaterial composition and dynamic mechanical compression on cellular behavior in 3D hydrogels. The bioreactor contained multiple actuating posts that could apply cyclic compressive strains ranging from 0 to 42% to arrays of cell-encapsulated hydrogels. The bioreactor could be interconnected with other compressive bioreactors, which enabled the combinatorial screenings of 3D cellular behaviors simultaneously. As an application of the screening platform, cell spreading, and osteogenic differentiation of human mesenchymal stem cells (hMSCs) were characterized in 3D gelatin methacryloyl (GelMA) hydrogels. Increasing hydrogel concentration from 5 to 10% restricted the cell spreading, however, dynamic compressive strain increased cell spreading. Osteogenic differentiation of hMSCs was also affected by dynamic compressive strains. hMSCs in 5% GelMA hydrogel were more sensitive to strains, and the 42% strain group showed a significant increase in osteogenic differentiation compared to other groups. The interconnectable dynamic compression bioreactor provides an efficient way to study the interactions of cells and their physical microenvironments in three dimensions.
生物物理线索可以强烈地指导细胞或组织的行为。细胞通过力学转导来解释它们的生物物理环境,例如基质硬度或动态机械刺激。然而,我们对力学转导的各个方面的理解受到缺乏能够筛选三维(3D)细胞行为对生物物理线索响应的适当分析平台的限制。在这里,我们开发了一种动态压缩生物反应器,以研究生物材料组成和动态机械压缩对 3D 水凝胶中细胞行为的组合效应。该生物反应器包含多个致动柱,可向细胞包封的水凝胶阵列施加 0 至 42%的循环压缩应变。该生物反应器可以与其他压缩生物反应器互连,从而能够同时进行 3D 细胞行为的组合筛选。作为筛选平台的应用,研究了人间充质干细胞(hMSC)在 3D 明胶甲基丙烯酰(GelMA)水凝胶中的细胞铺展和成骨分化。水凝胶浓度从 5%增加到 10%限制了细胞铺展,然而,动态压缩应变增加了细胞铺展。hMSC 的成骨分化也受到动态压缩应变的影响。5% GelMA 水凝胶中的 hMSC 对应变更敏感,与其他组相比,42%应变组的成骨分化显著增加。互连的动态压缩生物反应器提供了一种有效的方法来研究细胞与其物理微环境在三维空间中的相互作用。