Pedersen John A, Swartz Melody A
Biomedical Engineering Department, Northwestern University, Evanston, IL 60208, USA.
Ann Biomed Eng. 2005 Nov;33(11):1469-90. doi: 10.1007/s10439-005-8159-4.
Cells are mechanically coupled to their extracellular environments, which play critical roles in both communicating the state of the mechanical environment to the cell as well as in mediating cellular response to a variety of stimuli. Along with the molecular composition and mechanical properties of the extracellular matrix (ECM), recent work has demonstrated the importance of dimensionality in cell-ECM associations for controlling the sensitive communication between cells and the ECM. Matrix forces are generally transmitted to cells differently when the cells are on two-dimensional (2D) vs. within three-dimensional (3D) matrices, and cells in 3D environments may experience mechanical signaling that is unique vis-à-vis cells in 2D environments, such as the recently described 3D-matrix adhesion assemblies. This review examines how the dimensionality of the extracellular environment can affect in vitro cell mechanobiology, focusing on collagen and fibrin systems.
细胞与细胞外环境存在机械耦合,这在将机械环境状态传递给细胞以及介导细胞对各种刺激的反应方面都起着关键作用。除了细胞外基质(ECM)的分子组成和机械特性外,最近的研究表明,维度在细胞与ECM关联中对于控制细胞与ECM之间的敏感通讯具有重要意义。当细胞处于二维(2D)与三维(3D)基质上时,基质力通常以不同方式传递给细胞,并且3D环境中的细胞可能会经历与2D环境中的细胞不同的机械信号传导,例如最近描述的3D基质粘附组件。本综述探讨细胞外环境的维度如何影响体外细胞力学生物学,重点关注胶原蛋白和纤维蛋白系统。