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运动学和动力学变量对关节软骨力学和生物学特性的影响。

Effects of kinematic and kinetic variables on articular cartilage mechanical and biological properties.

作者信息

Yuh Catherine, Laurent Michel P, Torzilli Peter A, Mell Steven P, Maher Suzanne A, Chubinskaya Susanna, Wimmer Markus A

机构信息

Rush University, Department of Orthopedic Surgery, Chicago, IL, USA.

Rush University, Department of Orthopedic Surgery, Chicago, IL, USA.

出版信息

Osteoarthritis Cartilage. 2025 Jun;33(6):710-720. doi: 10.1016/j.joca.2025.02.790. Epub 2025 Mar 24.

Abstract

OBJECTIVE

During daily activity, the knee joint experiences a range of complex joint motion and loading patterns. However, few studies have investigated the effects of combined motion and load to understand how interactions between these factors may affect articular hyaline cartilage at the tissue and cell level. Our objective was to quantify the effects of varying combinations of physiologically relevant analogs of specific knee movements and loading on cartilage mechanical and biological properties.

DESIGN

Using response surface methodology applied to an established bioreactor-indenter workflow, we quantified the effect of load (20-60N, or ∼1-3 MPa), sliding speed (1-100 mm/s) and migrating contact frequency (0.00-0.2 Hertz) on changes in cartilage stiffening ratio, cartilage deformation (i.e., surface height displacement), cell viability, histopathological score, and gene expression. All kinetic and kinematic input ranges were chosen to fall within established physiological ranges in the knee. Bioreactor testing was conducted using a ceramic counterface and a testing lubricant of culture medium.

RESULTS

Cartilage stiffening ratio increased after loading - the magnitude of the change was affected by load and sliding speed. Minimum cartilage deformation occurred at low load and high sliding speed. Superficial cell death was driven by an interaction of load and sliding speed, with the highest percentages of cell death at high loads. No terms were observed to have significant effects on histopathological score.

CONCLUSIONS

Our findings provide a better understanding of how kinematic and kinetic factors modulate cartilage responses at the matrix and the cell level, by quantifying the cartilage response using physiological input parameters.

摘要

目的

在日常活动中,膝关节会经历一系列复杂的关节运动和负荷模式。然而,很少有研究调查联合运动和负荷的影响,以了解这些因素之间的相互作用如何在组织和细胞水平上影响关节透明软骨。我们的目的是量化特定膝关节运动和负荷的生理相关模拟物的不同组合对软骨力学和生物学特性的影响。

设计

使用响应面方法应用于既定的生物反应器-压头工作流程,我们量化了负荷(20-60N,或约1-3MPa)、滑动速度(1-100mm/s)和移动接触频率(0.00-0.2赫兹)对软骨硬化率变化、软骨变形(即表面高度位移)、细胞活力、组织病理学评分和基因表达的影响。所有动力学和运动学输入范围均选择在膝关节既定的生理范围内。使用陶瓷配对面和培养基测试润滑剂进行生物反应器测试。

结果

加载后软骨硬化率增加——变化幅度受负荷和滑动速度影响。在低负荷和高滑动速度下,软骨变形最小。表面细胞死亡由负荷和滑动速度的相互作用驱动,在高负荷下细胞死亡百分比最高。未观察到对组织病理学评分有显著影响的因素。

结论

我们的研究结果通过使用生理输入参数量化软骨反应,更好地理解了运动学和动力学因素如何在基质和细胞水平上调节软骨反应。

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