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Virtual Stenting Workflow with Vessel-Specific Initialization and Adaptive Expansion for Neurovascular Stents and Flow Diverters

机译:虚拟支架工作流程具有针对血管的支架和分流器的特定于血管的初始化和自适应扩展

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摘要

Endovascular intervention using traditional neurovascular stents and densely braided flow diverters (FDs) have become the preferred treatment strategies for traditionally challenging intracranial aneurysms (IAs). Modeling stent and FD deployment in patient-specific aneurysms and its flow modification results prior to the actual intervention can potentially predict the patient outcome and treatment optimization. We present a clinically focused, streamlined virtual stenting workflow that efficiently simulates stent and FD treatment in patient-specific aneurysms based on expanding a simplex mesh structure. The simplex mesh is generated using an innovative vessel-specific initialization technique, which uses the patient’s parent artery diameter to identify the initial position of the simplex mesh inside the artery. A novel adaptive expansion algorithm enables the acceleration of deployment process by adjusting the expansion forces based on the distance of the simplex mesh from the parent vessel. The virtual stenting workflow was tested by modeling the treatment of two patient-specific aneurysms using the Enterprise stent and the Pipeline Embolization Device (commercial FD). Both devices were deployed in the aneurysm models in a few seconds. Computational fluid dynamics analyses of pre- and post-treatment aneurysmal hemodynamics show flow reduction in the aneurysmal sac in treated aneurysms, with the FD diverting more flow than the Enterprise stent. The test results show that this workflow can rapidly simulate clinical deployment of stents and FDs, hence paving the way for its future clinical implementation.
机译:使用传统的神经血管支架和密集编织的分流器(FD)进行血管内干预已成为传统挑战性颅内动脉瘤(IAs)的首选治疗策略。在实际干预之前,在患者特定的动脉瘤中模拟支架和FD的部署及其流量修改结果可以潜在地预测患者的治疗效果和治疗优化。我们提出了一种以临床为重点的,简化的虚拟支架置入工作流程,该流程可以基于扩展单纯形网状结构有效地模拟患者特定动脉瘤中的支架和FD治疗。单面网格是使用创新的特定于血管的初始化技术生成的,该技术使用患者的父动脉直径来识别动脉内单面网格的初始位置。一种新颖的自适应扩展算法,可以根据单纯形网格到父血管的距离来调整扩展力,从而加快部署过程。通过使用Enterprise支架和Pipeline Embolization Device(商业FD)对两种患者特定的动脉瘤的治疗进行建模,从而测试了虚拟支架的工作流程。两种设备都在几秒钟内部署到了动脉瘤模型中。治疗前和治疗后动脉瘤血流动力学的计算流体动力学分析显示,治疗后的动脉瘤中动脉瘤囊的血流减少,而FD的血流比Enterprise支架更多。测试结果表明,该工作流程可以快速模拟支架和FD的临床部署,从而为其将来的临床实施铺平了道路。

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