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使用聚乙烯醇(PVA)冷冻凝胶动脉模型、超声成像和逆有限元分析模拟动脉粥样硬化斑块力学。

Simulating atherosclerotic plaque mechanics using polyvinyl alcohol (PVA) cryogel artery phantoms, ultrasound imaging and inverse finite element analysis.

作者信息

Guendouz Yasmine, Razif Noor Adeebah Mohamed, Bernasconi Floriane, Brien Gordon O', Johnston Robert D, Lally Caitríona

机构信息

Trinity Centre for Biomedical Engineering, Trinity College Dublin, Dublin, Ireland.

Department of Mechanical, Manufacturing and Biomedical Engineering, School of Engineering, Trinity College Dublin, Dublin, Ireland.

出版信息

Phys Med Biol. 2024 Dec 19;69(24). doi: 10.1088/1361-6560/ad9a4b.

Abstract

The clinical decision to establish if a patient with carotid disease should undergo surgical intervention is primarily based on the percent stenosis. Whilst this applies for high-grade stenosed vessels (>70%), it falls short for other cases. Due to the heterogeneity of plaque tissue, probing the mechanics of the tissue would likely provide further insights into why some plaques are more prone to rupture. Mechanical characterization of such tissue is nontrivial, however, due to the difficulties in collecting fresh, intact plaque tissue and using physiologically relevant mechanical testing of such material. The use of polyvinyl alcohol (PVA) cryogel is thus highly convenient because of its acoustic properties and tunable mechanical properties.The aim of this study is to demonstrate the potential of PVA phantoms to simulate atherosclerotic features. In addition, a testing and simulation framework is developed for full PVA vessel material characterization using ring tensile testing and inflation testing combined with non-invasive ultrasound imaging and computational modeling.Strain stiffening behavior was observed in PVA through ring tensile tests, particularly at high (= 6) freeze-thaw cycles (FTCs). Inflation testing of bi-layered phantoms featuring lipid pool inclusions demonstrated high strains at shoulder regions. The application of an inverse finite element framework successfully recovered boundaries and determined the shear moduli for the PVA wall to lie within the range 27-53 kPa.The imaging-modeling framework presented facilitates the use and characterization of arterial mimicking phantoms to further explore plaque rupture. It also shows translational potential for non-invasive mechanical characterization of atherosclerotic plaques to improve the identification of clinically relevant metrics of plaque vulnerability.

摘要

确定患有颈动脉疾病的患者是否应接受手术干预的临床决策主要基于狭窄百分比。虽然这适用于高度狭窄的血管(>70%),但在其他情况下并不适用。由于斑块组织的异质性,探究组织的力学特性可能会进一步深入了解为什么有些斑块更容易破裂。然而,由于难以收集新鲜、完整的斑块组织并对这种材料进行生理相关的力学测试,对这种组织进行力学表征并非易事。因此,聚乙烯醇(PVA)冷冻凝胶因其声学特性和可调力学特性而非常方便使用。本研究的目的是证明PVA模型模拟动脉粥样硬化特征的潜力。此外,还开发了一个测试和模拟框架,用于通过环向拉伸试验和膨胀试验结合无创超声成像和计算建模对完整的PVA血管材料进行表征。通过环向拉伸试验在PVA中观察到应变硬化行为,特别是在高(=6)冻融循环(FTC)时。对具有脂质池内含物的双层模型进行的膨胀试验表明,肩部区域存在高应变。应用反向有限元框架成功恢复了边界,并确定PVA壁的剪切模量在27-53kPa范围内。所提出的成像-建模框架有助于使用和表征动脉模拟模型,以进一步探索斑块破裂。它还显示了对动脉粥样硬化斑块进行无创力学表征的转化潜力,以改进对斑块易损性临床相关指标的识别。

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