Cebral Juan R, Duan Xinjie, Gade Piyusha S, Chung Bong Jae, Mut Fernando, Aziz Khaled, Robertson Anne M
Bioengineering Department, George Mason University, 4400 University Drive, MSN 2A1, Fairfax, VA, 22030, USA.
Department of Mechanical Engineering and Materials Science, University of Pittsburgh, Pittsburgh, PA, USA.
Ann Biomed Eng. 2016 Dec;44(12):3553-3567. doi: 10.1007/s10439-016-1682-7. Epub 2016 Jun 27.
The evolution of intracranial aneurysms (IAs) is thought to be driven by progressive wall degradation in response to abnormal hemodynamics. Previous studies focused on the relationship between global hemodynamics and wall properties. However, hemodynamics, wall structure and mechanical properties of cerebral aneurysms can be non-uniform across the aneurysm wall. Therefore, the aim of this work is to introduce a methodology for mapping local hemodynamics to local wall structure in resected aneurysm specimens. This methodology combines image-based computational fluid dynamics, tissue resection, micro-CT imaging of resected specimens mounted on 3D-printed aneurysm models, alignment to 3D vascular models, multi-photon microscopy of the wall, and regional mapping of hemodynamics and wall properties. This approach employs a new 3D virtual marking tool for surgeons to delineate the location of the resected specimen directly on the 3D model, while in the surgical suite. The case of a middle cerebral artery aneurysm is used to illustrate the application of this methodology to the assessment of the relationship between local wall shear stress and local wall properties including collagen fiber organization and wall geometry. This methodology can similarly be used to study the relationship between local intramural stresses and local wall structure.
颅内动脉瘤(IA)的演变被认为是由异常血流动力学导致的血管壁渐进性退化所驱动。以往的研究主要关注整体血流动力学与血管壁特性之间的关系。然而,脑动脉瘤的血流动力学、血管壁结构和力学特性在动脉瘤壁上可能并不均匀。因此,本研究的目的是介绍一种方法,用于在切除的动脉瘤标本中将局部血流动力学映射到局部血管壁结构。该方法结合了基于图像的计算流体动力学、组织切除、安装在3D打印动脉瘤模型上的切除标本的微型CT成像、与3D血管模型的对齐、血管壁的多光子显微镜检查以及血流动力学和血管壁特性的区域映射。这种方法采用了一种新的3D虚拟标记工具,使外科医生能够在手术过程中直接在3D模型上描绘切除标本的位置。以一例大脑中动脉动脉瘤为例,说明该方法在评估局部壁面剪应力与局部血管壁特性(包括胶原纤维组织和血管壁几何形状)之间关系中的应用。该方法同样可用于研究局部壁内应力与局部血管壁结构之间的关系。