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Multiscale Regression Modeling in Mouse Supraspinatus Tendons Reveals That Dynamic Processes Act as Mediators in Structure-Function Relationships

机译:小鼠Supraspinatus肌腱的多尺度回归模型揭示动态过程充当结构-功能关系的中介

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摘要

Recent advances in technology have allowed for the measurement of dynamic processes (re-alignment, crimp, deformation, sliding), but only a limited number of studies have investigated their relationship with mechanical properties. The overall objective of this study was to investigate the role of composition, structure, and the dynamic response to load in predicting tendon mechanical properties in a multi-level fashion mimicking native hierarchical collagen structure. Multiple linear regression models were investigated to determine the relationships between composition/structure, dynamic processes, and mechanical properties. Mediation was then used to determine if dynamic processes mediated structure-function relationships. Dynamic processes were strong predictors of mechanical properties. These predictions were location-dependent, with the insertion site utilizing all four dynamic responses and the midsubstance responding primarily with fibril deformation and sliding. In addition, dynamic processes were moderately predicted by composition and structure in a regionally-dependent manner. Finally, dynamic processes were partial mediators of the relationship between composition/structure and mechanical function, and results suggested that mediation is likely shared between multiple dynamic processes. In conclusion, the mechanical properties at the midsubstance of the tendon are controlled primarily by fibril structure and this region responds to load via fibril deformation and sliding. Conversely, the mechanical function at the insertion site is controlled by many other important parameters and the region responds to load via all four dynamic mechanisms. Overall, this study presents a strong foundation on which to design future experimental and modeling efforts in order to fully understand the complex structure-function relationships present in tendon.
机译:技术的最新进展已允许测量动态过程(重新对准,压接,变形,滑动),但只有少数研究研究了它们与机械性能的关系。这项研究的总体目标是研究模仿天然分级胶原蛋白结构的多级方式中组成,结构和动态载荷响应在预测肌腱力学特性中的作用。研究了多个线性回归模型,以确定组成/结构,动态过程和机械性能之间的关系。然后使用中介来确定动态过程是否介导了结构-功能关系。动态过程是机械性能的强大预测指标。这些预测是位置依赖性的,插入位点利用所有四个动态响应,中间物质主要响应原纤维变形和滑动。此外,动态过程是通过组成和结构以区域相关的方式适度地预测的。最后,动力学过程是组成/结构与机械功能之间关系的部分调节者,结果表明,调节可能在多个动力学过程之间共享。总之,在肌腱中部的力学性能主要受原纤维结构控制,该区域通过原纤维变形和滑动来响应载荷。相反,插入部位的机械功能由许多其他重要参数控制,并且该区域通过所有四个动态机制对载荷做出响应。总的来说,这项研究为设计未来的实验和建模工作奠定了坚实的基础,以便充分了解肌腱中存在的复杂的结构-功能关系。

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