Department of Chemistry and Chemical Biology, Harvard University, Cambridge, Massachusetts 02138, USA.
John A. Paulson School of Engineering and Applied Sciences, Harvard University, Cambridge, Massachusetts 02138, USA.
Nat Commun. 2017 Mar 13;8:14700. doi: 10.1038/ncomms14700.
Mechanical forces in the cell's natural environment have a crucial impact on growth, differentiation and behaviour. Few areas of biology can be understood without taking into account how both individual cells and cell networks sense and transduce physical stresses. However, the field is currently held back by the limitations of the available methods to apply physiologically relevant stress profiles on cells, particularly with sub-cellular resolution, in controlled in vitro experiments. Here we report a new type of active cell culture material that allows highly localized, directional and reversible deformation of the cell growth substrate, with control at scales ranging from the entire surface to the subcellular, and response times on the order of seconds. These capabilities are not matched by any other method, and this versatile material has the potential to bridge the performance gap between the existing single cell micro-manipulation and 2D cell sheet mechanical stimulation techniques.
细胞的自然环境中的机械力对其生长、分化和行为具有至关重要的影响。如果不考虑单个细胞和细胞网络如何感知和转导物理压力,就几乎无法理解生物学的任何领域。然而,目前该领域受到可用方法的限制,这些方法无法在体外实验中以生理相关的方式在细胞上施加压力,特别是在亚细胞分辨率下。在这里,我们报告了一种新型的活性细胞培养材料,它可以实现细胞生长基质的高度局部化、定向和可逆变形,控制范围从整个表面到亚细胞,响应时间在秒级范围内。目前没有任何其他方法可以实现这些功能,这种多功能材料有可能弥合现有单细胞微操作和二维细胞片机械刺激技术之间的性能差距。