Progressive alterations in microstructural organization and biomechanical response in the ApoE mouse model of aneurysm.

Biomatter Pub Date : 2013-07-01 Epub Date: 2013-04-01 DOI:10.4161/biom.24648
Darren Haskett, Mohamad Azhar, Urs Utzinger, Jonathan P Vande Geest
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引用次数: 17

Abstract

AAA is a complex disease that leads to a localized dilation of the infrarenal aorta that develops over years. Longitudinal information in humans has been difficult to obtain for this disease, therefore mouse models have become increasingly used to study the development of AAAs. The objective of this study was to determine any changes that occur in the biomechanical response and fiber microstructure in the ApoE(-/-) AngII mouse model of aneurysm during disease progression. Adult ApoE(-/-) AngII infused mice along with wild-type controls were taken at 14 and 28 d. Aortas were excised and tested simultaneously for biaxial mechanical response and ECM organization. Data sets were fit to a Fung-type constitutive model to give peak strains and stiffness values. Images from two photon microscopy were quantified in order to assess the preferred fiber alignment and degree of fiber orientation. Biomechanical results found significant differences that were present at 14 d had returned to normal by 28 d along with significant changes in fiber orientation and dispersion indicating remodeling occurring within the aneurysmal wall. This return of some of the normal biomechanical function, in addition the continuing changes that occur in the microstructure suggest a restorative response that occurs in the ApoE(-/-) AngII infused model after the initial aneurysm formation.

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Abstract Image

Abstract Image

ApoE小鼠动脉瘤模型微结构组织和生物力学响应的进行性改变。
AAA是一种复杂的疾病,可导致多年发展的肾下主动脉局部扩张。这种疾病的人体纵向信息很难获得,因此小鼠模型越来越多地用于研究AAAs的发展。本研究的目的是确定ApoE(-/-) AngII小鼠动脉瘤模型在疾病进展过程中发生的生物力学反应和纤维微观结构的变化。在第14和28天分别注射ApoE(-/-) AngII的成年小鼠和野生型对照组。切除主动脉,同时检测双轴力学反应和ECM组织。数据集拟合到fung型本构模型,给出峰值应变和刚度值。从两个光子显微镜图像被量化,以评估首选的光纤对准和光纤取向的程度。生物力学结果发现,14 d时出现的显著差异在28 d时恢复正常,同时纤维取向和弥散发生显著变化,表明动脉瘤壁内发生重构。一些正常生物力学功能的恢复,以及微观结构的持续变化表明,在初始动脉瘤形成后,ApoE(-/-) AngII注入模型中发生了恢复性反应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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