Blood flow shapes intravascular pillar geometry in the chick chorioallantoic membrane.

Grace S Lee, Nenad Filipovic, Lino F Miele, Miao Lin, Dinee C Simpson, Barry Giney, Moritz A Konerding, Akira Tsuda, Steven J Mentzer
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引用次数: 37

Abstract

The relative contribution of blood flow to vessel structure remains a fundamental question in biology. To define the influence of intravascular flow fields, we studied tissue islands--here defined as intravascular pillars--in the chick chorioallantoic membrane. Pillars comprised 0.02 to 0.5% of the vascular system in 2-dimensional projection and were predominantly observed at vessel bifurcations. The bifurcation angle was generally inversely related to the length of the pillar (R = -0.47, P < .001). The pillar orientation closely mirrored the axis of the dominant vessel with an average variance of 5.62 +/- 6.96 degrees (p = .02). In contrast, the variance of pillar orientation relative to nondominant vessels was 36.78 +/- 21.33 degrees (p > .05). 3-dimensional computational flow simulations indicated that the intravascular pillars were located in regions of low shear stress. Both wide-angle and acute-angle models mapped the pillars to regions with shear less than 1 dyn/cm2. Further, flow modeling indicated that the pillars were spatially constrained by regions of higher wall shear stress. Finally, the shear maps indicated that the development of new pillars was limited to regions of low shear stress. We conclude that mechanical forces produced by blood flow have both a limiting and permissive influence on pillar development in the chick chorioallantoic membrane.

Abstract Image

Abstract Image

Abstract Image

血流形成小鸡绒毛膜尿囊膜血管内柱的几何形状。
血流对血管结构的相对贡献仍然是生物学中的一个基本问题。为了确定血管内流场的影响,我们研究了鸡绒毛膜尿囊膜中的组织岛——这里定义为血管内柱。柱状结构在二维投影中占血管系统的0.02 ~ 0.5%,主要在血管分叉处观察到。分叉角度与柱子长度呈负相关(R = -0.47, P < 0.001)。柱的方向与优势血管的轴线密切相关,平均方差为5.62 +/- 6.96度(p = 0.02)。相比之下,相对于非优势血管,柱子方向的差异为36.78±21.33度(p > 0.05)。三维计算流模拟结果表明,柱状体位于低剪应力区域。广角和锐角模型均将矿柱映射到剪切小于1 dyn/cm2的区域。此外,流动模拟表明,柱在空间上受到较高壁面剪应力区域的约束。剪切图表明,新矿柱的发育仅限于低剪应力区域。我们的结论是,血流产生的机械力对鸡绒毛膜尿囊膜柱的发育既有限制作用,也有允许作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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