...
首页> 外文期刊>Journal of neurointerventional surgery >Genetic correlates of wall shear stress in a patient-specific 3D-printed cerebral aneurysm model
【24h】

Genetic correlates of wall shear stress in a patient-specific 3D-printed cerebral aneurysm model

机译:壁剪应力在患者特异性3D印刷脑动脉瘤模型中的遗传相关性

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

Objectives To study the correlation between wall shear stress and endothelial cell expression in a patient-specific, three-dimensional (3D)-printed model of a cerebral aneurysm. Materials and methods A 3D-printed model of a cerebral aneurysm was created from a patient's angiogram. After populating the model with human endothelial cells, it was exposed to media under flow for 24 hours. Endothelial cell morphology was characterized in five regions of the 3D-printed model using confocal microscopy. Endothelial cells were then harvested from distinct regions of the 3D-printed model for mRNA collection and gene analysis via quantitative polymerase chain reaction (qPCR.) Cell morphology and mRNA measurement were correlated with computational fluid dynamics simulations. Results The model was successfully populated with endothelial cells, which survived under flow for 24 hours. Endothelial morphology showed alignment with flow in the proximal and distal parent vessel and aneurysm neck, but disorganization in the aneurysm dome. Genetic analysis of endothelial mRNA expression in the aneurysm dome and distal parent vessel was compared with the proximal parent vessels. ADAMTS-1 and NOS3 were downregulated in the aneurysm dome, while GJA4 was upregulated in the distal parent vessel. Disorganized morphology and decreased ADAMTS-1 and NOS3 expression correlated with areas of substantially lower wall shear stress and wall shear stress gradient in computational fluid dynamics simulations. Conclusions Creating 3D-printed models of patient-specific cerebral aneurysms populated with human endothelial cells is feasible. Analysis of these cells after exposure to flow demonstrates differences in both cell morphology and genetic expression, which correlate with areas of differential hemodynamic stress.
机译:研究患者特异性,三维(3D) - 脑动脉瘤的三维(3D)分布模型中壁剪切应力和内皮细胞表达的相关性的目标。材料和方法从患者的血管造影中创建了脑动脉瘤的3D印刷模型。用人类内皮细胞填充模型后,将其暴露于流动介质24小时。内皮细胞形态的特征在于使用共聚焦显微镜的3D印刷模型的五个区域。然后通过定量聚合酶链反应(QPCR,从3D印刷模型的不同区域收获内皮细胞。通过定量聚合酶链反应(QPCR。)细胞形态和MRNA测量与计算流体动力学模拟相关。结果模型与内皮细胞成功填充,其在流动下施加24小时。内皮形态显示与近端和远端父母血管和动脉瘤颈部流动的对齐,但在动脉瘤圆顶中的混乱。与近端母体血管进行比较了动脉瘤圆顶和远端母体容器中内皮mRNA表达的遗传分析。在动脉瘤圆顶中下调Adamts-1和NOS3,而GJA4在远端父母血管中上调。杂交形态和减少的Adamts-1和NOS3表达与计算流体动力学模拟中的基本下壁剪切应力和壁剪切应力梯度的区域相关。结论创造与人内皮细胞填充的患者特异性脑动脉瘤的3D印刷模型是可行的。暴露于流动后对这些细胞的分析证明了细胞形态和遗传表达的差异,其与差分血流动力学应力的区域相关。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号