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Biomechanical Properties of Murine Meniscus Surface via AFM-based Nanoindentation

机译:通过基于AFM的纳米压痕的小鼠半月板表面的生物力学特性。

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摘要

This study aimed to quantify the biomechanical properties of murine meniscus surface. Atomic force microscopy (AFM)-based nanoindentation was performed on the central region, proximal side of menisci from 6- to 24-week old male C57BL/6 mice using microspherical tips (Rtip ≈ 5 μm) in PBS. A unique, linear correlation between indentation depth, D, and response force, F, was found on menisci from all age groups. This non-Hertzian behavior is likely due to the dominance of tensile resistance by the collagen fibril bundles on meniscus surface that are mostly aligned along the circumferential direction observed on 12-week old menisci. The indentation resistance was calculated as both the effective stiffness, Sind = dF/dD, and the effective modulus, Eind, via the isotropic Hertz model. Values of Sind and Eind were found to depend on indentation rate, suggesting the existence of poro-viscoelasticity. These values do not significantly vary with anatomical sites, lateral versus medial compartments, or mouse age. In addition, Eind of meniscus surface (e.g., 6.1 ± 0.8 MPa for 12 weeks of age, mean ± SEM, n = 13) was found to be significantly higher than those of meniscus surfaces in other species, and of murine articular cartilage surface (1.4 ± 0.1 MPa, n = 6). In summary, these results provided the first direct mechanical knowledge of murine knee meniscus tissues. We expect this understanding to serve as a mechanics-based benchmark for further probing the developmental biology and osteoarthritis symptoms of meniscus in various murine models.
机译:这项研究旨在量化小鼠半月板表面的生物力学性能。在6月至24周大的雄性C57BL / 6小鼠的半月板的中央区域,近侧半月板的中央区域使用基于原子力显微镜(AFM)的纳米压痕,使用PBS中的微球形尖端(Rtip≈5μm)。在所有年龄段的半月板中,压痕深度D和响应力F之间存在独特的线性关系。这种非赫兹的行为可能是由于半月板表面上的胶原蛋白原纤维束主要沿沿12周龄半月板观察到的圆周方向排列的抗张性优势所致。压痕阻力通过各向同性赫兹模型计算为有效刚度Sind = dF / dD和有效模量Eind。发现Sind和Eind的值取决于压痕率,表明存在孔隙黏弹性。这些值不会随解剖部位,外侧与内侧隔室或小鼠年龄而显着变化。此外,发现半月板表面的Eind(例如,12周龄时为6.1±0.8 MPa,平均值±SEM,n = 13)明显高于其他物种的半月板表面和鼠关节软骨表面的Eind( 1.4±0.1 MPa,n = 6)。总而言之,这些结果提供了对鼠膝半月板组织的第一笔直接的机械知识。我们希望这种理解可以作为基于力学的基准,以进一步探查各种鼠模型中半月板的发育生物学和骨关节炎症状。

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