Shetye Snehal S, Deault Matthew M, Puttlitz Christian M
Department of Mechanical Engineering, Colorado State University, Fort Collins, CO, USA.
Department of Mechanical Engineering, Colorado State University, Fort Collins, CO, USA; Schoool of Biomedical Engineering, Colorado State University, Fort Collins, CO, USA; Department of Clinical Sciences, Colorado State University, Fort Collins, CO, USA.
J Mech Behav Biomed Mater. 2014 Jun;34:146-53. doi: 10.1016/j.jmbbm.2014.02.014. Epub 2014 Feb 14.
The dura mater performs a major functional role in the stability and mechanical response of the spinal cord complex. Computational techniques investigating the etiology of spinal cord injury require an accurate mechanical description of the dura mater. Previous studies investigating the mechanical response of the dura mater have reported conflicting results regarding the anisotropic stiffness of the dura in the longitudinal and circumferential direction. The aim of this study was to investigate the biaxial response of the dura mater in order to establish the tissue level mechanical behavior under physiological loading scenarios. To this end, square sections of the dura were tested in a custom biaxial setup under a comprehensive uniaxial and biaxial loading protocol. The resultant data were fit via a transversely isotropic continuum model and an anisotropic continuum constitutive model. The transversely isotropic formulation failed to accurately predict the dura mater׳s uniaxial behavior. The anisotropic formulation accurately predicted the uniaxial response in both longitudinal and circumferential directions. Significantly higher stiffness (p<0.0001) was observed in the circumferential direction as compared to the longitudinal direction. Further, the longitudinal direction displayed a significantly lower degree of nonlinearity (p<0.045) and significantly higher degree of collagen fiber dispersion (p<0.032) as compared to the circumferential direction. Results indicate that the dura mater has differential mechanical response in the longitudinal and circumferential directions and future studies should utilize an anisotropic two fiber family continuum model to accurately describe dura mater mechanics.
硬脑膜在脊髓复合体的稳定性和力学响应中发挥着主要功能作用。研究脊髓损伤病因的计算技术需要对硬脑膜进行精确的力学描述。先前关于硬脑膜力学响应的研究报告了硬脑膜在纵向和圆周方向上各向异性刚度的相互矛盾的结果。本研究的目的是研究硬脑膜的双轴响应,以便确定生理负荷情况下组织水平的力学行为。为此,在定制的双轴装置中,根据全面的单轴和双轴加载方案对硬脑膜的方形切片进行测试。通过横向各向同性连续体模型和各向异性连续体本构模型对所得数据进行拟合。横向各向同性公式未能准确预测硬脑膜的单轴行为。各向异性公式准确地预测了纵向和圆周方向上的单轴响应。与纵向相比,在圆周方向上观察到显著更高的刚度(p<0.0001)。此外,与圆周方向相比,纵向显示出显著更低的非线性程度(p<0.045)和显著更高的胶原纤维分散程度(p<0.032)。结果表明,硬脑膜在纵向和圆周方向上具有不同的力学响应,未来的研究应使用各向异性双纤维族连续体模型来准确描述硬脑膜力学。