Department of Orthopaedic Surgery, Graduate School of Medicine, Chiba University, 1-8-1 Inohana Chuo-ku, Chiba 260-8670, Japan.
J Biomech. 2024 Jul;172:112204. doi: 10.1016/j.jbiomech.2024.112204. Epub 2024 Jun 21.
The interosseous membrane (IOM) of the forearm plays a crucial role in facilitating forearm function and mechanical load transmission between the radius and ulna. Accurate characterization of its biomechanical properties is essential for developing realistic finite element models of the forearm. This study aimed to investigate the mechanical behavior and material properties of the central fibrous regions of the IOM using fresh frozen cadavers. Ten forearms from five cadavers were dissected, preserving the IOM and identifying the distal accessory band (DAB), central band (CB), and proximal accessory band (PAB). Bone-ligament-bone specimens were prepared and subjected to uniaxial tensile testing, with the loading direction aligned with the fiber orientation. Force-displacement curves were obtained and converted to force-strain and stress-strain curves using premeasured fiber lengths and cross-sectional areas. The results demonstrated distinct mechanical responses among the IOM regions, with the PAB exhibiting significantly lower force-strain behavior compared to the DAB and CB. The derived force-strain and stress-strain relationships provide valuable insights into the regional variations in stiffness and strength of the IOM, highlighting the importance of considering these differences when modeling the IOM in finite element analysis. In conclusion, this study establishes a foundation for the development of advanced finite element models of the forearm that accurately capture the biomechanical behavior of the IOM.
前臂骨间膜(IOM)在促进前臂功能和桡骨与尺骨之间的机械负荷传递方面起着至关重要的作用。准确描述其生物力学特性对于开发逼真的前臂有限元模型至关重要。本研究旨在使用新鲜冷冻尸体研究 IOM 的中央纤维区域的力学行为和材料特性。从五个尸体中解剖了十个前臂,保留了 IOM 并识别了远端附件带(DAB)、中央带(CB)和近端附件带(PAB)。制备了骨-韧带-骨标本,并进行单轴拉伸测试,加载方向与纤维方向一致。获得力-位移曲线,并使用预先测量的纤维长度和横截面积将其转换为力-应变和应力-应变曲线。结果表明,IOM 区域之间存在明显的力学响应,与 DAB 和 CB 相比,PAB 的力-应变行为明显较低。得出的力-应变和应力-应变关系提供了对 IOM 刚度和强度的区域变化的深入了解,强调了在有限元分析中对 IOM 进行建模时考虑这些差异的重要性。总之,本研究为开发准确捕捉 IOM 生物力学行为的先进前臂有限元模型奠定了基础。