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Biomechanical Influence of Cartilage Homeostasis in Health and Disease

机译:软骨稳态对健康和疾病的生物力学影响

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There is an urgent demand for long term solutions to improve osteoarthritis treatments in the ageing population. There are drugs that control the pain but none that stop the progression of the disease in a safe and efficient way. Increased intervention efforts, augmented by early diagnosis and integrated biophysical therapies are therefore needed. Unfortunately, progress has been hampered due to the wide variety of experimental models which examine the effect of mechanical stimuli and inflammatory mediators on signal transduction pathways. Our understanding of the early mechanopathophysiology is poor, particularly the way in which mechanical stimuli influences cell function and regulates matrix synthesis. This makes it difficult to identify reliable targets and design new therapies. In addition, the effect of mechanical loading on matrix turnover is dependent on the nature of the mechanical stimulus. Accumulating evidence suggests that moderate mechanical loading helps to maintain cartilage integrity with a low turnover of matrix constituents. In contrast, nonphysiological mechanical signals are associated with increased cartilage damage and degenerative changes. This review will discuss the pathways regulated by compressive loading regimes and inflammatory signals in animal andin vitro3D models. Identification of the chondroprotective pathways will reveal novel targets for osteoarthritis treatments.
机译:迫切需要长期解决方案,以改善老龄化人群的骨关节炎治疗。有控制疼痛的药物,但没有一种可以安全有效地阻止疾病进展的药物。因此,需要加大干预力度,并通过早期诊断和综合生物物理疗法来加强。不幸的是,由于检查机械刺激和炎性介质对信号转导途径的影响的实验模型种类繁多,进展受到了阻碍。我们对早期力学骨生理学的理解很差,尤其是机械刺激影响细胞功能和调节基质合成的方式。这使得难以确定可靠的靶标并设计新的疗法。另外,机械负载对基质周转的影响取决于机械刺激的性质。越来越多的证据表明,适度的机械负荷有助于维持软骨完整性,而基质成分的转化率较低。相反,非生理机械信号与软骨损伤增加和退行性改变有关。这篇综述将讨论在动物和体外3D模型中受压缩负荷机制和炎症信号调节的途径。软骨保护途径的鉴定将揭示出骨关节炎治疗的新靶标。

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