Chiu Jeng-Jiann, Chen Li-Jing, Chen Cheng-Nan, Lee Pei-Ling, Lee Chih-I
Division of Medical Engineering Research, National Health Research Institutes, Rm 8324, 8F, No. 161, Sec. 6, Min-Chuan East Road, 114 Taipei, Taiwan, ROC.
J Biomech. 2004 Apr;37(4):531-9. doi: 10.1016/j.jbiomech.2003.08.012.
Vascular endothelial cells (ECs) are constantly subjected to blood flow-induced shear stress and the influences of neighboring smooth muscle cells (SMCs). In the present study, a coculture flow system was developed to study the effect of shear stress on EC-SMC interactions. ECs and SMCs were separated by a porous membrane with only the EC side subjected to the flow condition. When ECs were exposed to a shear stress of 12 dynes/cm2 for 24 h, the cocultured SMCs tended to orient perpendicularly to the flow direction. This perpendicular orientation of the cocultured SMCs to flow direction was not observed when ECs were exposed to a shear stress of 2 dynes/cm2. Under the static condition, long and parallel actin bundles were observed in the central regions of the cocultured SMCs, whereas the actin filaments localized mainly at the periphery of the cocultured ECs. After 24 h of flow application, the cocultured ECs displayed very long, well-organized, parallel actin stress fibers aligned with the flow direction in the central regions of the cells. Immunostaining of platelet endothelial cell adhesion molecule-1 confirmed the elongation and alignment of the cocultured ECs with the flow direction. Coculture with SMCs under static condition induced EC gene expressions of growth-related oncogene-alpha and monocyte chemotactic protein-1, and shear stress was found to abolish these SMC-induced gene expressions. Our results suggest that shear stress may serve as a down-regulator for the pathophysiologically relevant gene expression in ECs cocultured with SMCs.
血管内皮细胞(ECs)不断受到血流诱导的剪切应力以及邻近平滑肌细胞(SMCs)的影响。在本研究中,开发了一种共培养流动系统来研究剪切应力对EC-SMC相互作用的影响。ECs和SMCs被多孔膜隔开,只有EC一侧处于流动条件下。当ECs暴露于12达因/平方厘米的剪切应力24小时时,共培养的SMCs倾向于垂直于流动方向排列。当ECs暴露于2达因/平方厘米的剪切应力时,未观察到共培养的SMCs垂直于流动方向的排列。在静态条件下,在共培养的SMCs的中央区域观察到长而平行的肌动蛋白束,而肌动蛋白丝主要位于共培养的ECs的周边。施加流动24小时后,共培养的ECs在细胞中央区域显示出非常长、排列良好、与流动方向一致的平行肌动蛋白应力纤维。血小板内皮细胞黏附分子-1的免疫染色证实了共培养的ECs沿流动方向的伸长和排列。在静态条件下与SMCs共培养诱导了生长相关癌基因-α和单核细胞趋化蛋白-1的EC基因表达,并且发现剪切应力消除了这些SMC诱导的基因表达。我们的结果表明,剪切应力可能作为与SMCs共培养的ECs中病理生理相关基因表达的下调因子。