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一种用于血栓永久变形的新本构模型及其在抽吸血栓切除术模拟中的应用。

A new constitutive model for permanent deformation of blood clots with application to simulation of aspiration thrombectomy.

机构信息

Biomedical Engineering, School of Engineering, National University of Ireland Galway, Galway, Ireland.

Biomedical Engineering, School of Engineering, National University of Ireland Galway, Galway, Ireland.

出版信息

J Biomech. 2022 Jan;130:110865. doi: 10.1016/j.jbiomech.2021.110865. Epub 2021 Nov 12.

Abstract

As a first line option in the treatment of acute ischemic stroke (AIS), direct aspiration is a fast and effective technique with promising outcomes. In silico models are widely used for design and preclinical assessment of new developed devices and therapeutic methods. Accurate modelling of the mechanical behaviour of blood clot is a key factor in the design and simulation of aspiration devices. In this study we develop a new constitutive model which incorporates the unrecoverable plastic deformation of clots. The model is developed based on the deformation-induced microstructural changes in fibrin network, including the formation and dissociation of the cross-links between fibrin fibres. The model is calibrated using previously reported experimentally measured permanent clot deformation following uniaxial stretching. The calibrated plasticity model is then used to simulate aspiration thrombectomy. Results reveal that inclusion of permanent plastic deformation results in ∼ 15 % increase in clot aspiration length at an applied aspiration pressure of 100 mmHg. The constitutive law developed in this study provides a basis for improved design and evaluation of novel aspiration catheters leading to increased first-pass revascularization rate.

摘要

直接抽吸是治疗急性缺血性脑卒中(AIS)的一线选择,它是一种快速有效的技术,具有良好的效果。在计算机模型中,广泛用于设计和临床前评估新开发的设备和治疗方法。准确模拟血栓的力学行为是设计和模拟抽吸设备的关键因素。在这项研究中,我们开发了一种新的本构模型,该模型包含了血栓的不可恢复的塑性变形。该模型是基于纤维蛋白网络的变形诱导的微观结构变化,包括纤维蛋白纤维之间交联的形成和解离。该模型使用之前报道的在单轴拉伸下测量的永久性血栓变形进行校准。然后,使用校准后的塑性模型来模拟抽吸血栓切除术。结果表明,在 100mmHg 的抽吸压力下,包含永久性塑性变形可使血栓抽吸长度增加约 15%。本研究中开发的本构律为改进新型抽吸导管的设计和评估提供了基础,从而提高了首次再通率。

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