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The influence of fluid shear stress on the remodeling of the embryonic primary capillary plexus

机译:流体剪切应力对胚胎初级毛细血管丛重塑的影响

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The primary capillary plexus in early yolk sacs is remodeled into matured vitelline vessels aligned in the direction of blood flow at the onset of cardiac contraction. We hypothesized that the influence of fluid shear stress on cellular behaviors may be an underlying mechanism by which some existing capillary channels remain open while others are closed during remodeling. Using a recently developed E-Tmod knock-out/lacZ knock-in mouse model, we showed that erythroblasts exhibited rheological properties similar to those of a viscous cell suspension. In contrast, the non-erythroblast (NE) cells, which attach among themselves within the yolk sac, are capable of lamellipodia extension and cell migration. Isolated NE cells in a parallel-plate flow chamber exposed to fluid shear stress, however, ceased lamellipodia extension. Such response may minimize NE cell migration into domains exposed to fluid shear stress. A two-dimensional mathematical model incorporating these cellular behaviors demonstrated that shear stress created by the blood flow initiated by the embryonic heart contraction might be needed for the remodeling of primary capillary plexus.
机译:早卵黄囊中的初级毛细血管丛在心脏收缩开始时被重塑成成熟的卵黄血管,该卵黄血管在血流方向上对齐。我们假设流体剪切应力对细胞行为的影响可能是一个潜在的机制,通过该机制一些现有的毛细血管通道在重塑过程中保持打开,而另一些毛细血管通道则处于关闭状态。使用最近开发的E-Tmod敲除/ lacZ敲入小鼠模型,我们显示成红细胞表现出与粘性细胞悬浮液相似的流变特性。相反,在卵黄囊内相互附着的非成红细胞(NE)细胞能够进行lamellipodia延伸和细胞迁移。在平行板流动室中分离的NE细胞暴露于流体剪切应力,但是,停止了lamellipodia扩展。这样的响应可以使NE细胞迁移到暴露于流体剪切应力的区域中的现象最小化。包含这些细胞行为的二维数学模型表明,由胚胎心脏收缩引发的血流产生的切应力可能需要进行初级毛细血管丛的重塑。

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