Dependence of Tendon Multiscale Mechanics on Sample Gauge Length is Consistent with Discontinuous Collagen Fibrils

Benjamin E. Peterson, Spencer E. Szczesny
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引用次数: 12

Abstract

While collagen fibrils are understood to be the primary load-bearing elements in tendon, controversy still exists on how fibrils functionally transmit load from muscle to bone. Specifically, it's unclear whether fibrils are structurally continuous along the tendon length and bear load independently, or if they are discontinuous and transfer load through interfibrillar shear forces. To address this question, we investigated whether the multiscale mechanics of rat tail tendon fascicles is dependent on sample gauge length. We hypothesized that as the grip-to-grip length is reduced and approaches the length of the collagen fibrils, tendon fascicles will adopt a multiscale mechanical response consistent with structurally continuous fibrils. Our findings show that, for gauge lengths of 20 mm or greater, the local fibril strains are less than the bulk tissue strains, which can be explained by relative sliding between discontinuous collagen fibrils. In contrast, at a 5 mm gauge length, the fibril strains are equivalent to the applied tissue strains, suggesting that the collagen fibrils are structurally continuous between the grips. Additionally, the macroscale tissue modulus is increased at gauge lengths of 5 and 10 mm. Together, these data support the hypothesis that collagen fibrils in rat tail tendon fascicles are discontinuous and also suggest that their length is between 5 and 10 mm. This fundamental information regarding tendon structure-function relationships underscores the importance of the tissue components that transmit load between fibrils and is critical for understanding tendon pathology as well as establishing structural benchmarks for suitable tissue engineered replacements.
肌腱多尺度力学对试样长度的依赖与不连续的胶原原纤维一致
虽然胶原原纤维被认为是肌腱的主要承重元素,但关于原纤维如何将负荷从肌肉传递到骨骼的功能仍存在争议。具体来说,目前尚不清楚原纤维是沿着肌腱长度结构连续并独立承受载荷,还是不连续并通过纤维间剪切力传递载荷。为了解决这个问题,我们研究了大鼠尾腱束的多尺度力学是否依赖于样本尺长度。我们假设,当握柄到握柄的长度减少并接近胶原原纤维的长度时,肌腱束将采取与结构连续的原纤维一致的多尺度力学响应。我们的研究结果表明,对于20mm或更大的测量长度,局部原纤维应变小于整体组织应变,这可以通过不连续的胶原原纤维之间的相对滑动来解释。相比之下,在5毫米的测量长度下,原纤维应变与施加的组织应变相等,这表明胶原原纤维在握把之间结构上是连续的。此外,在5和10毫米的厚度下,宏观组织模量增加。综上所述,这些数据支持了大鼠尾腱束中的胶原原纤维不连续的假设,并表明它们的长度在5到10毫米之间。这些关于肌腱结构-功能关系的基本信息强调了在原纤维之间传递载荷的组织成分的重要性,对于理解肌腱病理以及为合适的组织工程替代物建立结构基准至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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