Shan Jieling, Chi Qingjia, Wang Hongbing, Huang Qiping, Yang Li, Yu Guanglei, Zou Xiaobing
College of Chemistry and Chemical Engineering, Chongqing University, Chongqing, China.
Cell Biol Int. 2014 Nov;38(11):1233-43. doi: 10.1002/cbin.10325. Epub 2014 Aug 27.
Cells in vivo typically are found in 3D matrices, the mechanical stiffness of which is important to the cell and tissue-scale biological processes. Although it is well characterized that as to how cells sense matrix stiffness in 2D substrates, the scenario in 3D matrices needs to be explored. Thus, materials that can mimic native 3D environments and possess wide, physiologically relevant elasticity are highly desirable. Natural polymer-based materials and synthetic hydrogels could provide an better 3D platforms to investigate the mechano-response of cells with stiffness comparable to their native environments. However, the limited stiffness range together with interdependence of matrix stiffness and adhesive ligand density are inherent in many kinds of materials, and hinder efforts to demonstrate the true effects contributed by matrix stiffness. These problems have been addressed by the recently emerging exquisitely designed materials based on native matrix components, designer matrices, and synthetic polymers. In this review, a variety of materials with a wide stiffness range that mimic the mechanical environment of native 3D matrices and the independent affection of stiffness for cellular behavior and tissue-level processes are discussed.
体内的细胞通常存在于三维基质中,其机械硬度对细胞和组织尺度的生物过程很重要。尽管关于细胞如何感知二维基质中的基质硬度已得到充分表征,但三维基质中的情况仍有待探索。因此,非常需要能够模拟天然三维环境并具有广泛的、生理相关弹性的材料。基于天然聚合物的材料和合成水凝胶可以提供更好的三维平台,以研究细胞在与天然环境相当的硬度下的机械响应。然而,许多材料存在刚度范围有限以及基质刚度与粘附配体密度相互依赖的问题,这阻碍了人们证明基质刚度所产生的真正影响。最近出现的基于天然基质成分、定制基质和合成聚合物的精心设计的材料解决了这些问题。在这篇综述中,讨论了各种具有广泛刚度范围的材料,这些材料模拟天然三维基质的机械环境,以及刚度对细胞行为和组织水平过程的独立影响。