Department of Surgery, Loyola University Medical Center, 2160 South First Avenue, Maywood, IL 60153, USA.
Biomaterials. 2011 May;32(15):3776-83. doi: 10.1016/j.biomaterials.2011.02.003.
We developed a live imaging system enabling dynamic visualization of single cell alignment induced by external mechanical force in a 3-D collagen matrix. The alignment dynamics and migration of smooth muscle cells (SMCs) were studied by time lapse differential interference contrast and/or phase contrast microscopy. Fluorescent and reflection confocal microcopy were used to study the SMC morphology and the microscale collagen matrix remodeling induced by SMCs. A custom developed program was used to quantify the cell migration and matrix remodeling. Our system enables cell concentration-independent alignment eliminating cell-to-cell interference and enables dynamic cell tracking, high magnification observation and rapid cell alignment accomplished in a few hours compared to days in traditional models. We observed that cells sense and response to the mechanical signal before cell spreading. Under mechanical stretch the migration directionality index of SMCs is 46.3% more than those cells without external stretch; the dynamic direction of cell protrusion is aligned to that of the mechanical force; SMCs showed directional matrix remodeling and the alignment index calculated from the matrix in front of cell protrusions is about 3 fold of that adjacent to cell bodies. Our results indicate that the mechanism of cell alignment is directional cell protrusion. Mechano-sensing, directionality in cell protrusion dynamics, cell migration and matrix remodeling are highly integrated. Our system provides a platform for studying the role of mechanical force on the cell matrix interactions and thus finds strategies to optimize selected properties of engineered tissues.
我们开发了一种活细胞成像系统,能够在 3D 胶原基质中动态可视化单个细胞在外力作用下的定向排列。通过相差和/或相衬显微镜延时拍摄研究平滑肌细胞(SMCs)的定向动力学和迁移。荧光和反射共聚焦显微镜用于研究 SMC 的形态和 SMC 诱导的微尺度胶原基质重塑。使用自定义开发的程序来定量分析细胞迁移和基质重塑。我们的系统能够实现细胞浓度独立的定向排列,消除细胞间的干扰,并能够进行动态细胞跟踪、高倍放大观察和快速细胞定向排列,与传统模型相比,这只需要几个小时而不是几天。我们观察到细胞在细胞铺展之前就能够感知和响应机械信号。在机械拉伸下,SMC 的迁移方向性指数比没有外部拉伸的细胞高 46.3%;细胞突起的动态方向与机械力的方向一致;SMC 表现出定向的基质重塑,并且从细胞突起前方的基质中计算出的定向指数约为细胞体相邻基质的 3 倍。我们的结果表明,细胞定向排列的机制是定向细胞突起。机械感知、细胞突起动力学的方向性、细胞迁移和基质重塑是高度集成的。我们的系统为研究机械力对细胞-基质相互作用的影响提供了一个平台,从而找到了优化工程组织特定性能的策略。