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Indentation Mapping Reveals Poroelastic but not Viscoelastic Properties Spanning Native Zonal Articular Cartilage

机译:压痕贴图揭示了跨越原生区带关节软骨的多孔弹性而非粘弹性

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摘要

Osteoarthrosis is a debilitating disease affecting millions, yet engineering materials for cartilage regeneration has proven difficult because of the complex microstructure of this tissue. Articular cartilage, like many biological tissues, produces a time-dependent response to mechanical load that is critical to cell’s physiological function in part due to solid and fluid phase interactions and property variations across multiple length scales. Recreating the time-dependent strain and fluid flow may be critical for successfully engineering replacement tissues but thus far has largely been neglected. Here, microindentation is used to accomplish three objectives: (1) quantify a materials time-dependent mechanical response, (2) map material properties at a cellular relevant length scale throughout zonal articular cartilage, (3) and elucidate the underlying viscoelastic, poroelastic, and nonlinear poroelastic causes of deformation in articular cartilage. Untreated and trypsin-treated cartilage were sectioned perpendicular to the articular surface and indentation was used to evaluate properties throughout zonal cartilage on the cut surface. The experimental results demonstrated that within all cartilage zones, the mechanical response was well represented by a model assuming nonlinear biphasic behavior and did not follow conventional viscoelastic or linear poroelastic models. Additionally, 10% (w/w) agarose was tested and, as anticipated, behaved as a linear poroelastic material. The approach outlined here provides a method, applicable to many tissues and biomaterials, which reveals and quantifies the underlying causes of time-dependent deformation, elucidates key aspects of material structure and function, and that can be used to provide important inputs for computational models and targets for tissue engineering.
机译:骨关节炎是一种使数百万人衰弱的疾病,但是由于该组织的复杂微观结构,用于软骨再生的工程材料已被证明是困难的。像许多生物组织一样,关节软骨对机械负荷产生与时间有关的响应,这对细胞的生理功能至关重要,部分原因是固相和液相相互作用以及跨多个长度尺度的特性变化。重建与时间有关的应变和流体流动对于成功改造替代组织至关重要,但迄今为止,很大程度上已被忽略。在这里,微压痕用于实现三个目标:(1)量化材料随时间变化的机械响应;(2)在整个带状关节软骨的细胞相关长度范围内绘制材料特性图;(3)阐明基本的粘弹性,多孔弹性,和关节软骨变形的非线性多孔弹性原因。垂直于关节表面切开未经治疗和经胰蛋白酶处理的软骨,并使用压痕来评估切割面上整个带状软骨的性质。实验结果表明,在所有软骨区域内,机械反应都可以通过假设非线性双相行为的模型很好地表示,并且不遵循常规的粘弹性或线性多孔弹性模型。另外,测试了10%(w / w)的琼脂糖,并且正如预期的那样,表现为线性多孔弹性材料。本文概述的方法提供了一种适用于许多组织和生物材料的方法,该方法揭示并量化了随时间变化的形变的根本原因,阐明了材料结构和功能的关键方面,可用于为计算模型和模型提供重要输入。组织工程的目标。

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