Department of Mechanical Engineering-Engineering Mechanics, Michigan Technological University, Houghton, MI 49931, USA.
J Biomech. 2012 Aug 31;45(13):2230-5. doi: 10.1016/j.jbiomech.2012.06.017. Epub 2012 Jul 11.
Menisci are crescent shaped fibrocartilaginous structures which support load distribution of the knee. The menisci are specifically designed to fit the contour of the femoral condyles, aiding to disperse the stresses on the tibial plateau and in turn safeguarding the underlying articular cartilage. The importance of the meniscal superficial layer has not been fully revealed and it is suspected that this layer plays a pivotal role for meniscal function. In this study, both femoral (proximal) and tibial (distal) contacting meniscal surfaces were mechanically examined on the nano-level among three distinct regions (anterior, central and posterior) of the lateral and medial menisci. Nanoindentation testing showed no significant differences among regions, surfaces or anatomical locations, possibly elucidating on the homogeneity of the meniscal superficial zone structure (E(instantaneous): 3.17-4.12MPa, E(steady-state): 1.47-1.69MPa). Nanomechanical moduli values were approximately an order of magnitude greater than micro-scale testing derived moduli values. These findings validate the structural homogeneity of the meniscal superficial zone, showing that material properties are statistically similar regardless of meniscal surface and region. Understanding the mechanical behavior of meniscal surfaces is imperative to properly design an effective meniscal replacement.
半月板是新月形的纤维软骨结构,可支撑膝关节的负荷分布。半月板的设计特别适合股骨髁的轮廓,有助于分散胫骨平台上的应力,从而保护下面的关节软骨。半月板浅层的重要性尚未完全揭示出来,人们怀疑该层在半月板功能中起着关键作用。在这项研究中,在外侧和内侧半月板的三个不同区域(前、中、后)的近股骨(近端)和远胫骨(远端)接触半月板表面在纳米级水平上进行了力学检查。纳米压痕测试表明,区域、表面或解剖位置之间没有显著差异,这可能阐明了半月板浅层结构的同质性(瞬时弹性模量:3.17-4.12MPa,稳定状态弹性模量:1.47-1.69MPa)。纳米力学模量值比微尺度测试得出的模量值大约大一个数量级。这些发现验证了半月板浅层的结构同质性,表明无论半月板表面和区域如何,材料特性在统计学上都是相似的。了解半月板表面的力学行为对于正确设计有效的半月板替代物至关重要。