首页> 外文期刊>Journal of biomechanical engineering. >Quantification of Morphological Modulation, F-Actin Remodeling, and PECAM-1 (CD-31) Redistribution in Endothelial Cells in Response to Fluid-Induced Shear Stress Under Various Flow Conditions
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Quantification of Morphological Modulation, F-Actin Remodeling, and PECAM-1 (CD-31) Redistribution in Endothelial Cells in Response to Fluid-Induced Shear Stress Under Various Flow Conditions

机译:在各种流动条件下响应流体诱导的剪切应力的内皮细胞形态学调节,F-actin重塑和PECAM-1(CD-31)的定量

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Cardiovascular diseases (CVDs) are the number one cause of death globally. Arterial endothelial cell (EC) dysfunction plays a key role in many of these CVDs, such as atherosclerosis. Blood flow-induced wall shear stress (WSS), among many other pathophysiological factors, is known to significantly contribute to EC dysfunction. The present study reports an in vitro investigation of the effect of quantified WSS on ECs, analyzing the EC morphometric parameters and cytoskeletal remodeling. The effects of four different flow cases (low steady laminar (LSL), medium steady laminar (MSL), nonzero-mean sinusoidal laminar (NZMSL), and laminar carotid (LCRD) waveforms) on the EC area, perimeter, shape index (SI), angle of orientation, F-actin bundle remodeling, and platelet endothelial cell adhesion molecule-1 (PECAM-1) localization were studied. For the first time, a flow facility was fully quantified for the uniformity of flow over ECs and for WSS determination (as opposed to relying on analytical equations). The SI and angle of orientation were found to be the most flow-sensitive morphometric parameters. A two-dimensional fast Fourier transform (2D FFT) based image processing technique was applied to analyze the F-actin directionality, and an alignment index (AI) was defined accordingly. Also, a significant peripheral loss of PECAM-1 in ECs subjected to atheroprone cases (LSL and NZMSL) with a high cell surface/cytoplasm stain of this protein is reported, which may shed light on of the mechanosensory role of PECAM-1 in mechanotransduction.
机译:心血管疾病(CVDS)是全球死亡的第一原因。动脉内皮细胞(EC)功能障碍在许多这些CVDS中起关键作用,例如动脉粥样硬化。血流诱导的壁剪切应力(WSS)在许多其他病理生理因素中,已知有显着促进EC功能障碍。本研究报告了对量化WSS对ECS的影响的体外调查,分析EC形态学参数和细胞骨骼重塑。四种不同流量案例(低稳态层压(LSL),中稳态层状(MSL),非零平均正弦流(NZMSL)和层状颈动脉(LCRD)波形的效果在EC面积,周边,形状指数上(SI [研究,取向角,F-actin束重塑和血小板内皮细胞粘附分子-1(PECAM-1)定位。首次,流动设施完全量化了ECS流量的均匀性,并且对于WSS确定(而不是依赖于分析方程)。发现Si和取向角度是最流动敏感的形态学参数。应用了基于二维快速傅里叶变换(2D FFT)的图像处理技术来分析F-actin方向性,并且相应地定义了对准指数(AI)。此外,报道了通过该蛋白质的高细胞表面/细胞质染色的滴土病例(LSL和NZMS1)的ECS中的PECAM-1的显着外周垂丧失,这可能揭示了PECAM-1在机械调节中的机械敏感作用。

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