Martufi Giampaolo, Christian Gasser T
Department of Solid Mechanics, School of Engineering Sciences, Royal Institute of Technology (KTH), Osquars Backe 1, SE-100 44 Stockholm, Sweden.
J Biomech Eng. 2013 Feb;135(2):021010. doi: 10.1115/1.4023254.
AAA disease is a serious condition and a multidisciplinary approach including biomechanics is needed to better understand and more effectively treat this disease. A rupture risk assessment is central to the management of AAA patients, and biomechanical simulation is a powerful tool to assist clinical decisions. Central to such a simulation approach is a need for robust and physiologically relevant models. Vascular tissue senses and responds actively to changes in its mechanical environment, a crucial tissue property that might also improve the biomechanical AAA rupture risk assessment. Specifically, constitutive modeling should not only focus on the (passive) interaction of structural components within the vascular wall, but also how cells dynamically maintain such a structure. In this article, after specifying the objectives of an AAA rupture risk assessment, the histology and mechanical properties of AAA tissue, with emphasis on the wall, are reviewed. Then a histomechanical constitutive description of the AAA wall is introduced that specifically accounts for collagen turnover. A test case simulation clearly emphasizes the need for constitutive descriptions that remodels with respect to the mechanical loading state. Finally, remarks regarding modeling of realistic clinical problems and possible future trends conclude the article.
腹主动脉瘤疾病是一种严重病症,需要采用包括生物力学在内的多学科方法来更好地理解并更有效地治疗该疾病。破裂风险评估是腹主动脉瘤患者管理的核心,而生物力学模拟是协助临床决策的有力工具。这种模拟方法的核心是需要强大且生理相关的模型。血管组织能够感知并积极响应其力学环境的变化,这一关键的组织特性或许也能改善腹主动脉瘤破裂风险的生物力学评估。具体而言,本构模型不仅应关注血管壁内结构成分的(被动)相互作用,还应关注细胞如何动态维持这种结构。在本文中,在明确腹主动脉瘤破裂风险评估的目标后,对腹主动脉瘤组织的组织学和力学特性(重点是血管壁)进行了综述。然后引入了腹主动脉瘤血管壁的组织力学本构描述,该描述特别考虑了胶原蛋白的更新。一个测试案例模拟清楚地强调了需要根据力学加载状态进行重塑的本构描述。最后,关于现实临床问题建模和可能的未来趋势的评论总结了本文。