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Interfibrillar shear stress is the loading mechanism of collagen fibrils in tendon

机译:纤维间剪切应力是胶原纤维在肌腱中的加载机制

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摘要

Despite the critical role tendons play in transmitting loads throughout the musculoskeletal system, little is known about the microstructural mechanisms underlying their mechanical function. Of particular interest is whether collagen fibrils in tendon fascicles bear load independently or if load is transferred between fibrils through interfibrillar shear forces. We conducted multiscale experimental testing and developed a microstructural shear lag model to explicitly test whether interfibrillar shear load transfer is indeed the fibrillar loading mechanism in tendon. Experimental correlations between fascicle macroscale mechanics and microscale interfibrillar sliding suggest that fibrils are discontinuous and share load. Moreover, for the first time, we demonstrate that a shear lag model can replicate the fascicle macroscale mechanics as well as predict the microscale fibrillar deformations. Since interfibrillar shear stress is the fundamental loading mechanism assumed in the model, this result provides strong evidence that load is transferred between fibrils in tendon and possibly other aligned collagenous tissues. Conclusively establishing this fibrillar loading mechanism and identifying the involved structural components should help develop repair strategies for tissue degeneration and guide the design of tissue engineered replacements.
机译:尽管肌腱在整个肌肉骨骼系统中传递载荷中起着关键作用,但对其力学功能背后的微结构机理知之甚少。特别令人感兴趣的是肌腱束中的胶原原纤维是否独立承受负荷,或者负荷是否通过原纤维间剪切力在原纤维之间转移。我们进行了多尺度的实验测试,并建立了微结构剪力滞后模型,以明确测试纤维间剪切负荷传递是否确实是肌腱中的纤维加载机制。分册宏观力学和微观原纤维间滑动之间的实验相关性表明,原纤维是不连续的,分担负荷。而且,这是我们第一次证明剪切滞后模型可以复制纤维束的宏观力学,并且可以预测微尺度的纤维状变形。由于原纤维间的剪切应力是模型中假定的基本载荷机制,因此该结果提供了有力的证据,表明载荷在肌腱的原纤维之间以及可能在其他对齐的胶原组织之间转移。结论是建立这种原纤维加载机制并确定涉及的结构成分应有助于制定组织变性的修复策略,并指导组织工程替代物的设计。

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