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生物反应器中关节加载前后软骨的微压痕:使用两种分析方法评估长度尺度依赖性

Microindentation of cartilage before and after articular loading in a bioreactor: assessment of length-scale dependency using two analysis methods.

作者信息

Yuh C, O'Bryan C S, Angelini T E, Wimmer M A

机构信息

Rush University Medical Center, Chicago, IL.

University of Florida, Gainesville, FL.

出版信息

Exp Mech. 2021 Sep;61(7):1069-1080. doi: 10.1007/s11340-021-00742-5. Epub 2021 Jun 23.

Abstract

BACKGROUND

Microindentation is a technique with high sensitivity and spatial resolution, allowing for measurements at small-scale indentation depths. Various methods of indentation analysis to determine output properties exist.

OBJECTIVE

Here, the Oliver-Pharr Method and Hertzian Method were compared for stiffness analyses of articular cartilage at varying length-scales before and after bioreactor loading.

METHODS

Using three different conospherical tips with varying radii (20, 100, 793.75 μm), a bioreactor-indenter workflow was performed on cartilage explants to assess changes in stiffness due to articular loading. For all data, both the Oliver-Pharr Method and Hertzian Method were applied for indentation analysis.

RESULTS

The reduced moduli calculated by the Hertzian Method were found to be similar to those of the Oliver-Pharr Method when the 20 μm tip size was used. The reduced moduli calculated using the Hertzian Method were found to be consistent across the varying length-scales, whereas for the Oliver-Pharr Method, adhesion/suction led to the largest tip exhibiting an increased average reduced modulus compared to the two smaller tips. Loading induced stiffening of articular cartilage was observed consistently, regardless of tip size or indentation analysis applied.

CONCLUSIONS

Overall, geometric linearity is preserved across all tip sizes for the Hertzian Method and may be assumed for the two smaller tip sizes using the Oliver-Pharr Method. These findings further validate the previously described stiffening response of the superficial zone of cartilage after articular loading and demonstrate that the finding is length-scale independent.

摘要

背景

微压痕技术具有高灵敏度和空间分辨率,能够在小尺度压痕深度下进行测量。存在多种用于确定输出特性的压痕分析方法。

目的

在此,比较了奥利弗-法尔法(Oliver-Pharr Method)和赫兹法(Hertzian Method)在生物反应器加载前后不同长度尺度下对关节软骨的刚度分析。

方法

使用三种不同半径(20、100、793.75μm)的不同球形尖端,对软骨外植体执行生物反应器-压头工作流程,以评估由于关节加载导致的刚度变化。对于所有数据,均应用奥利弗-法尔法和赫兹法进行压痕分析。

结果

当使用20μm尖端尺寸时,发现赫兹法计算的折合模量与奥利弗-法尔法的折合模量相似。发现使用赫兹法计算的折合模量在不同长度尺度上是一致的,而对于奥利弗-法尔法,与两个较小的尖端相比,粘附/吸力导致最大的尖端平均折合模量增加。无论尖端尺寸或应用的压痕分析如何,均一致观察到加载引起的关节软骨硬化。

结论

总体而言,赫兹法在所有尖端尺寸上均保持几何线性,对于两个较小的尖端尺寸,使用奥利弗-法尔法时也可假定如此。这些发现进一步验证了先前描述的关节加载后软骨表层区域的硬化反应,并表明该发现与长度尺度无关。

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Effects of non-enzymatic glycation on the micro- and nano-mechanics of articular cartilage.
J Mech Behav Biomed Mater. 2018 Jan;77:551-556. doi: 10.1016/j.jmbbm.2017.09.035. Epub 2017 Sep 30.
6
Influence of the pericellular and extracellular matrix structural properties on chondrocyte mechanics.
J Orthop Res. 2018 Feb;36(2):721-729. doi: 10.1002/jor.23774. Epub 2017 Nov 22.
7
Indentation mapping revealed poroelastic, but not viscoelastic, properties spanning native zonal articular cartilage.
Acta Biomater. 2017 Dec;64:41-49. doi: 10.1016/j.actbio.2017.10.003. Epub 2017 Oct 13.
8
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9
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Osteoarthritis Cartilage. 2017 Jan;25(1):99-107. doi: 10.1016/j.joca.2016.09.018. Epub 2016 Sep 30.
10
OARSI osteoarthritis cartilage histopathology assessment system: A biomechanical evaluation in the human knee.
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