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使用非均相膜模型的计算流体动力学对中空纤维膜式氧合器的血液动力学评估。

Hemodynamic Assessment of Hollow-Fiber Membrane Oxygenators Using Computational Fluid Dynamics in Heterogeneous Membrane Models.

机构信息

Lower Saxony Centre for Biomedical Engineering, Implant Research and Development (NIFE), Hannover Medical School, Hannover 30625, Germany; Department of Cardiothoracic, Transplantation and Vascular Surgery (HTTG), Hannover Medical School, Hannover 30625, Germany.

Lower Saxony Centre for Biomedical Engineering, Implant Research and Development (NIFE), Hannover Medical School, Hannover 30625, Germany; Department of Cardiothoracic, Transplantation and Vascular Surgery (HTTG), Hannover Medical School, Hannover 30625, Germany; German Centre for Lung Research (DZL), BREATH, Hannover Medical School, Hannover 30625, Germany.

出版信息

J Biomech Eng. 2021 May 1;143(5). doi: 10.1115/1.4049808.

Abstract

Extracorporeal membrane oxygenation (ECMO) has been used clinically for more than 40 years as a bridge to transplantation, with hollow-fiber membrane (HFM) oxygenators gaining in popularity due to their high gas transfer and low flow resistance. In spite of the technological advances in ECMO devices, the inevitable contact of the perfused blood with the polymer hollow-fiber gas-exchange membrane, and the subsequent thrombus formation, limits their clinical usage to only 2-4 weeks. In addition, the inhomogeneous flow in the device can further enhance thrombus formation and limit gas-transport efficiency. Endothelialization of the blood contacting surfaces of ECMO devices offers a potential solution to their inherent thrombogenicity. However, abnormal shear stresses and inhomogeneous blood flow might affect the function and activation status of the seeded endothelial cells (ECs). In this study, the blood flow through two HFM oxygenators, including the commercially available iLA® MiniLung Petite Novalung (Xenios AG, Germany) and an experimental one for the rat animal model, was modeled using computational fluid dynamics (CFD), with a view to assessing the magnitude and distribution of the wall shear stress (WSS) on the hollow fibers and flow fields in the oxygenators. This work demonstrated significant inhomogeneity in the flow dynamics of both oxygenators, with regions of high hollow-fiber WSS and regions of stagnant flow, implying a variable flow-induced stimulation on seeded ECs and possible EC activation and damage in a biohybrid oxygenator setting.

摘要

体外膜肺氧合(ECMO)作为移植的桥梁已经在临床上应用了 40 多年,由于中空纤维膜(HFM)氧合器具有较高的气体转移和较低的流动阻力,因此越来越受欢迎。尽管 ECMO 设备在技术上取得了进步,但由于灌注血液与聚合物中空纤维气体交换膜的不可避免接触以及随后的血栓形成,其临床应用仅限于 2-4 周。此外,设备内的不均匀流动会进一步增强血栓形成并限制气体传输效率。ECMO 设备的血液接触表面的内皮化为其固有的血栓形成提供了一种潜在的解决方案。然而,异常的剪切应力和不均匀的血流可能会影响接种内皮细胞(ECs)的功能和激活状态。在这项研究中,使用计算流体动力学(CFD)对两种 HFM 氧合器中的血液流动进行建模,包括市售的 iLA® MiniLung Petite Novalung(Xenios AG,德国)和用于大鼠动物模型的实验氧合器,以评估中空纤维上壁面剪切应力(WSS)的大小和分布以及氧合器中的流动场。这项工作表明,两种氧合器的流动动力学都存在显著的不均匀性,存在高中空纤维 WSS 区域和停滞流区域,这意味着在生物混合氧合器环境中,接种的 EC 会受到可变的流动诱导刺激,并且可能会发生 EC 激活和损伤。

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