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High-Bandwidth AFM-Based Rheology Reveals that Cartilage is Most Sensitive to High Loading Rates at Early Stages of Impairment

机译:基于AFM的高带宽流变学表明软骨对损伤早期的高负荷率最敏感

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摘要

Utilizing a newly developed atomic-force-microscopy-based wide-frequency rheology system, we measured the dynamic nanomechanical behavior of normal and glycosaminoglycan (GAG)-depleted cartilage, the latter representing matrix degradation that occurs at the earliest stages of osteoarthritis. We observed unique variations in the frequency-dependent stiffness and hydraulic permeability of cartilage in the 1 Hz-to-10 kHz range, a frequency range that is relevant to joint motions from normal ambulation to high-frequency impact loading. Measurement in this frequency range is well beyond the capabilities of typical commercial atomic force microscopes. We showed that the dynamic modulus of cartilage undergoes a dramatic alteration after GAG loss, even with the collagen network still intact: whereas the magnitude of the dynamic modulus decreased two- to threefold at higher frequencies, the peak frequency of the phase angle of the modulus (representing fluid-solid frictional dissipation) increased 15-fold from 55 Hz in normal cartilage to 800 Hz after GAG depletion. These results, based on a fibril-reinforced poroelastic finite-element model, demonstrated that GAG loss caused a dramatic increase in cartilage hydraulic permeability (up to 25-fold), suggesting that early osteoarthritic cartilage is more vulnerable to higher loading rates than to the conventionally studied “loading magnitude”. Thus, over the wide frequency range of joint motion during daily activities, hydraulic permeability appears the most sensitive marker of early tissue degradation.
机译:利用新开发的基于原子力显微镜的宽频流变系统,我们测量了正常和糖胺聚糖(GAG)耗尽的软骨的动态纳米力学行为,后者代表了在骨关节炎最早阶段发生的基质降解。我们在1 Hz至10 kHz的范围内观察到了软骨的频率依赖性刚度和水力渗透率的独特变化,该频率范围与从正常行走到高频冲击载荷的关节运动有关。在此频率范围内的测量远远超出了典型的商用原子力显微镜的能力。我们表明,即使胶原网络仍然完整,软骨的动态模量在GAG丧失后也会发生剧烈变化:而动态模量的幅度在较高频率下降低了2到3倍,模量相角的峰值频率(代表流固摩擦耗散)从GAG耗竭后正常软骨的55 Hz增至800 Hz,增加了15倍。这些结果基于原纤维增强的多孔弹性有限元模型,表明GAG损失导致软骨的水渗透性急剧增加(高达25倍),这表明早期骨关节炎的软骨比高负荷的软骨更易受伤害。传统上研究的“负荷量”。因此,在日常活动中关节运动的广泛频率范围内,水力渗透性似乎是早期组织退化的最敏感标志。

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