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升主动脉瘤的微观和宏观双轴行为相关性:一种新的实验技术。

Correlation between micro and macrostructural biaxial behavior of ascending thoracic aneurysm: a novel experimental technique.

机构信息

BioCardioLab, Ospedale del Cuore, Fondazione Toscana G. Monasterio, Massa, Italy; Department of Information Engineering, University of Pisa, Pisa, Italy.

Sant'Anna School of Advanced Studies, TeCIP Institute, Pisa, Italy.

出版信息

Med Eng Phys. 2020 Dec;86:78-85. doi: 10.1016/j.medengphy.2020.10.012. Epub 2020 Oct 24.

Abstract

Mechanical properties and microstructural modifications of vessel tissues are strongly linked, as established in the state of the art of cardiovascular diseases. Techniques to obtain both mechanical and structural information are reported, but the possibility to obtain real-time microstructural and macrostructural data correlated is still lacking. An experimental approach to characterize the aortic tissue is presented. A setup integrating biaxial traction and Small Angle Light Scattering (SALS) analysis is described. The system was adopted to test ex-vivo aorta specimens from healthy and aneusymatic (aTAA) cases. A significant variation of the fiber dispersion with respect to the unloaded state was encountered during the material traction. The corresponding microstructural and mechanical data were successfully used to fit a given anisotropic constitutive model, with satisfactory R values (0.97±0.11 and 0.96±0.17, for aTAA and healthy population, respectively) and fiber dispersion parameters variations between the aTAA and healthy populations (0.39±0.23 and 0.15±0.10). The method integrating the biaxial/SALS technique was validated, allowing for real-time synchronization between mechanical and microstructural analysis of anisotropic biological tissues.

摘要

血管组织的力学性能和微观结构改性密切相关,这在心血管疾病的研究现状中已经得到证实。已经有报道了获取力学和结构信息的技术,但仍缺乏获得实时微观结构和宏观结构数据相关性的可能性。本文提出了一种用于表征主动脉组织的实验方法。描述了一种集成双轴拉伸和小角光散射(SALS)分析的装置。该系统被用于测试来自健康和非对称性主动脉瘤(aTAA)病例的离体主动脉标本。在材料拉伸过程中,发现纤维分散度相对于无负载状态有显著变化。成功地使用相应的微观结构和力学数据来拟合给定的各向异性本构模型,对于 aTAA 和健康人群,R 值分别为 0.97±0.11 和 0.96±0.17,以及纤维分散度参数在 aTAA 和健康人群之间的变化(0.39±0.23 和 0.15±0.10)。验证了集成双轴/SALS 技术的方法,允许对各向异性生物组织的力学和微观结构分析进行实时同步。

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