Smith Lachlan J, Byers Sharon, Costi John J, Fazzalari Nicola L
Bone and Joint Research Laboratory, Division of Tissue Pathology, Institute of Medical and Veterinary Science, Adelaide, Australia.
Ann Biomed Eng. 2008 Feb;36(2):214-23. doi: 10.1007/s10439-007-9421-8. Epub 2007 Dec 8.
The anulus fibrosus of the human lumbar intervertebral disc has a complex, hierarchical structure comprised of collagens, proteoglycans, and elastic fibers. Recent histological studies have suggested that the elastic fiber network may play an important functional role. In this study, it was hypothesized that elastic fibers enhance the mechanical integrity of the extracellular matrix in the radial orientation, perpendicular to the plane containing the collagen fibers. Using a combination of biochemically verified enzymatic treatments and biomechanical tests, it was demonstrated that degradation of elastic fibers resulted in a significant reduction in both the initial modulus and the ultimate modulus, and a significant increase in the extensibility, of radially oriented anulus fibrosus specimens. Separate treatments and mechanical tests were used to account for any changes attributable to non-specific degradation of glycosaminoglycans. Additionally, histological assessments provided a unique perspective on structural changes in the elastic fiber network in radially oriented specimens subjected to tensile deformations. The results of this study demonstrate that elastic fibers play an important and unique role in the mechanical properties of the anulus fibrosus, and provide the basis for the development of improved material models to describe intervertebral disc mechanical behavior.
人类腰椎间盘的纤维环具有复杂的分层结构,由胶原蛋白、蛋白聚糖和弹性纤维组成。最近的组织学研究表明,弹性纤维网络可能发挥重要的功能作用。在本研究中,我们假设弹性纤维在垂直于包含胶原纤维平面的径向方向上增强了细胞外基质的机械完整性。通过结合经生物化学验证的酶处理和生物力学测试,结果表明,弹性纤维的降解导致径向取向的纤维环标本的初始模量和极限模量均显著降低,而伸长率显著增加。采用单独的处理和力学测试来解释归因于糖胺聚糖非特异性降解的任何变化。此外,组织学评估为经受拉伸变形的径向取向标本中弹性纤维网络的结构变化提供了独特的视角。本研究结果表明,弹性纤维在纤维环的力学性能中发挥着重要且独特的作用,并为开发改进的材料模型以描述椎间盘力学行为提供了基础。