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Cartilage-on-cartilage Cyclic Loading Induces Mechanical and Structural Damage

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Publisher Elsevier
Date 2019 Jul 8
PMID 31280053
Citations 16
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Abstract

Cartilage breaks down during mechanically-mediated osteoarthritis (OA). While previous research has begun to elucidate mechanical, structural and cellular damage in response to cyclic loading, gaps remain in our understanding of the link between cyclic cartilage loading and OA-like mechanical damage. Thus, the aim of this study was to quantify irreversible cartilage damage in response to cyclic loading. A novel in vitro model of damage through cartilage-on-cartilage cyclic loading was established. Cartilage was loaded at 1 Hz to two different doses (10,000 or 50,000 cycles) between -6.0 ± 0.2 MPa and -10.3 ± 0.2 MPa 1st Piola-Kirchhoff stress. After loading, mechanical damage (altered mechanical properties: elastic moduli and dissipated energy) and structural damage (surface damage and specimen thickness) were quantified. Linear and tangential moduli were determined by fitting the loading portion of the stress-strain curves. Dissipated energy was calculated from the area between loading and unloading stress-strain curves. Specimen thickness was measured both before and after loading. Surface damage was assessed by staining samples with India ink, then imaging the articular surface. Cyclic loading resulted in dose-dependent decreases in linear and tangential moduli, energy dissipation, thickness, and intact area. Collectively, these results show that cartilage damage can be initiated by mechanical loading alone in vitro, suggesting that cyclic loading can cause in vivo damage. This study demonstrated that with increased number of cycles, cartilage undergoes both tissue softening and structural damage. These findings are a first step towards characterizing the cartilage response to cyclic loading, which can ultimately provide important insight for delaying the initiation and slowing the progression of OA.

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References
1.
Piperno M, Reboul P, Le Graverand M, Peschard M, Annefeld M, Richard M . Osteoarthritic cartilage fibrillation is associated with a decrease in chondrocyte adhesion to fibronectin. Osteoarthritis Cartilage. 1999; 6(6):393-9. DOI: 10.1053/joca.1998.0138. View

2.
Clements K, Bee Z, Crossingham G, Adams M, Sharif M . How severe must repetitive loading be to kill chondrocytes in articular cartilage?. Osteoarthritis Cartilage. 2001; 9(5):499-507. DOI: 10.1053/joca.2000.0417. View

3.
Huang C, Mow V, Ateshian G . The role of flow-independent viscoelasticity in the biphasic tensile and compressive responses of articular cartilage. J Biomech Eng. 2001; 123(5):410-7. DOI: 10.1115/1.1392316. View

4.
Patwari P, Cook M, DiMicco M, Blake S, James I, Kumar S . Proteoglycan degradation after injurious compression of bovine and human articular cartilage in vitro: interaction with exogenous cytokines. Arthritis Rheum. 2003; 48(5):1292-301. DOI: 10.1002/art.10892. View

5.
Kerin A, Coleman A, Wisnom M, Adams M . Propagation of surface fissures in articular cartilage in response to cyclic loading in vitro. Clin Biomech (Bristol). 2003; 18(10):960-8. DOI: 10.1016/j.clinbiomech.2003.07.001. View