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Determining the contribution of glycosaminoglycans to tendon mechanical properties with a modified shear-lag model

机译:用修正的剪切滞后模型确定糖胺聚糖对肌腱力学性能的贡献

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摘要

Tendon has a complex hierarchical structure composed of both a collagenous and a non-collagenous matrix. Despite several studies that have aimed to elucidate the mechanism of load transfer between matrix components, the roles of glycosaminoglycans (GAGs) remain controversial. Thus, this study investigated the elastic properties of tendon using a modified shear-lag model that accounts for the structure and non-linear mechanical response of the GAGs. Unlike prior shear-lag models that are solved either in two dimensions or in axially symmetric geometries, we present a closed-form analytical model for three-dimensional periodic lattices of fibrils linked by GAGs. Using this approach, we show that the non-linear mechanical response of the GAGs leads to a distinct toe region in the stress-strain response of the tendon. The critical strain of the toe region is shown to decrease inversely with fibril length. Furthermore, we identify a characteristic length scale, related to microstructural parameters (e.g. GAG spacing, stiffness, and geometry) over which load is transferred from the GAGs to the fibrils. We show that when the fibril lengths are significantly larger than this length scale, the mechanical properties of the tendon are relatively insensitive to deletion of GAGs. Our results provide a physical explanation for the insensitivity for the mechanical response of tendon to the deletion of GAGs in mature tendons, underscore the importance of fibril length in determining the elastic properties of the tendon, and are in excellent agreement with computationally intensive simulations.
机译:肌腱具有由胶原和非胶原基质组成的复杂层次结构。尽管有几项旨在阐明基质组分之间负载转移机制的研究,但糖胺聚糖(GAG)的作用仍存在争议。因此,本研究使用修正的剪切滞后模型研究了腱的弹性特性,该模型考虑了GAG的结构和非线性机械响应。与在二维或轴向对称几何中求解的现有剪力滞后模型不同,我们为由GAG连接的原纤维的三维周期性晶格提供了一种封闭形式的分析模型。使用这种方法,我们表明,GAG的非线性机械响应会导致腱的应力应变响应中出现明显的脚趾区域。脚趾区域的临界应变显示出与原纤维长度成反比地降低。此外,我们确定了一个特征性的长度尺度,该尺度与微观结构参数(例如GAG间距,刚度和几何形状)有关,载荷从GAG传递到原纤维。我们表明,当原纤维长度显着大于该长度尺度时,肌腱的机械性能对GAG的缺失相对不敏感。我们的结果为肌腱对成熟肌腱中GAG缺失的机械反应不敏感提供了物理解释,强调了原纤维长度在确定肌腱弹性特性中的重要性,并且与计算密集型模拟非常吻合。

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