应用计算流体动力学设计和模拟患者特异性组织工程右心室-肺动脉分叉移植物

Seda Aslan, H. Halperin, L. Olivieri, N. Hibino, A. Krieger, Y. Loke, P. Mass, Kevin Nelson, E. Yeung, Jed Johnson, J. Opfermann, H. Matsushita, Takahiro Inoue
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引用次数: 1

摘要

患者特异性的可生物降解移植物旨在加强复杂先天性心脏缺陷(CHD)的手术修复。本研究报道了冠心病患者右心室-肺动脉分叉(RVPA)导管移植的设计、模拟和创建。本文以磁共振成像数据为基础,利用医学图像分割软件绘制了2例(n=2)行Rastelli型冠心病手术修复的患者的原始右心室流出道和RVPA导管解剖图。利用计算流体动力学(CFD)对RVPA脉动流进行模拟,计算重要的血流动力学参数。通过改变肺动脉分叉的半径和角度,重新设计了患者的RVPA几何形状。将重新设计的RVPA模型的壁剪应力和功率损失结果进行比较,以确定最佳接枝性能。血流动力学结果表明,优化后的移植物优于原移植物。为了在体内测试设计的移植物的可行性,在植入前使用3D打印心轴和静电纺丝技术制造了猪的分叉RVPA导管。植入的移植物允许新组织在几周内形成。我们的研究和模拟结果为在手术计划过程中为冠心病患者创建最佳性能的组织工程分叉移植物提供了见解。结合流动模拟来支持设计和静电纺丝技术来制造患者特异性的可生物降解移植物,有可能改善冠心病的手术效果。
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Design and Simulation of Patient-Specific Tissue-Engineered Bifurcated Right Ventricle-Pulmonary Artery Grafts using Computational Fluid Dynamics
Patient-specific biodegradable grafts target to enhance surgical repairs of complex congenital heart defects (CHD). This study reports the design, simulation, and creation of bifurcated right ventricle-pulmonary artery (RVPA) conduit grafts for patients with CHD. The original right ventricle outflow tract and RVPA conduit-anatomies of two patients (n=2) who previously underwent Rastelli type surgical repair for their CHD were created using medical image segmentation software based on magnetic resonance imaging data. The pulsatile RVPA flow was simulated utilizing computational fluid dynamics (CFD) to calculate important hemodynamic parameters. The re-designed RVPA geometries for the patients were created by varying the radius and angle of the pulmonary artery bifurcation. The wall shear stress and power loss results of the re-designed RVPA models were compared to identify the best performing graft. The hemodynamic results demonstrated that the designed optimized grafts outperformed the original grafts. To test the feasibility of designed grafts in vivo, the bifurcated RVPA conduit of a pig was manufactured using a 3D printed mandrel and electrospinning technique before the implantation. The implanted graft allowed new tissue formation within weeks. The results of our study and simulations provide an insight into the creation of optimal performing tissue-engineered bifurcated grafts for the patients with CHD in the surgical planning process. Integration of flow simulations to support design and electrospinning technique to manufacture patient-specific biodegradable grafts has the potential to improve surgical outcomes in CHD.
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