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Flow induced aneurysm-type remodeling near arterial bifurcation apex.

机译:流量引起动脉分叉顶点附近的动脉瘤型重塑。

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摘要

Cerebral aneurysms are often found at arterial bifurcation apices, raising the possibility that the unique hemodynamics associated with flow dividers predispose the wall to aneurysm formation. To identify the specific hemodynamics that lead to such mal-adaptive response, we developed a mapping system to correlate the flow field with vascular remodeling in canine created carotid bifurcations. In this study, carotid bifurcations were surgically created using two naive common carotid arteries in dogs. Next, in vivo angiography and computational fluid dynamics (CFD) simulations revealed the detailed hemodynamic microenvironment for each bifurcation, which were then spatially overlaid and correlated with histological features. Histology and immunohistochemistry were performed to explore the cellular and molecular alterations involved in the remodeling. We observed destructive remodeling in the flow acceleration region adjacent to the impingement that resembles the initiation of an intracranial aneurysm, characterized by disruption of internal elastic lamina, loss of endothelial and smooth muscle cells, elevated nitrotyrosine (marker of peroxynitrite) and MMP expressions. The strong localization of aneurysmal remodeling suggests that a combination of high wall shear stress (WSS) and high, positive spatial gradient in wall shear stress (WSSG) represents a "dangerous" hemodynamic condition that predisposes an apical vessel wall to aneurysm formation.
机译:脑动脉瘤经常在动脉分叉处发现,这增加了与分流器相关的独特血液动力学使壁易于形成动脉瘤的可能性。为了确定导致这种适应性不良反应的特定血液动力学,我们开发了一种映射系统,以将流场与犬产生的颈动脉分叉中的血管重塑相关联。在这项研究中,使用两只幼稚的颈总动脉通过手术创建了颈总叉。接下来,体内血管造影和计算流体动力学(CFD)模拟揭示了每个分支的详细血液动力学微环境,然后在空间上对其进行覆盖并与组织学特征相关联。进行了组织学和免疫组化研究以探索参与重塑的细胞和分子改变。我们观察到与颅内动脉瘤相似的撞击附近的血流加速区域发生破坏性重塑,其特征是内部弹性板层破裂,内皮和平滑肌细胞丢失,硝基酪氨酸升高(过氧亚硝酸盐标志)和MMP表达。动脉瘤重塑的强烈局限性表明,高壁切应力(WSS)和壁切应力(WSSG)中的高正空间梯度的组合代表了“危险”的血液动力学状况,使顶血管壁易形成动脉瘤。

著录项

  • 作者

    Wang, Zhijie.;

  • 作者单位

    State University of New York at Buffalo.$bMechanical and Aerospace Engineering.;

  • 授予单位 State University of New York at Buffalo.$bMechanical and Aerospace Engineering.;
  • 学科 Engineering Biomedical.; Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 132 p.
  • 总页数 132
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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