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在初始诱导损伤和疲劳加载循环次数的背景下,解释髌腱对疲劳加载的分子反应。

Molecular response of the patellar tendon to fatigue loading explained in the context of the initial induced damage and number of fatigue loading cycles.

机构信息

Leni and Peter W. May Department of Orthopaedics, Mount Sinai School of Medicine, Mount Sinai School of Medicine, 5 East 98th Street, New York, New York 10029, USA.

出版信息

J Orthop Res. 2012 Aug;30(8):1327-34. doi: 10.1002/jor.22059. Epub 2012 Jan 6.

Abstract

Accumulation of sub-rupture fatigue damage has been implicated in the development of tendinopathy. We previously developed an in vivo model of damage accumulation using the rat patellar tendon. Our model allows us to control the input loading parameters to induce fatigue damage in the tendon. Despite this precise control, the resulting induced damage could vary among animals because of differences in size or strength among their patellar tendons. In this study, we used number of applied cycles and initial (day-0) parameters that are indicative of induced damage to assess the molecular response 7 days after fatigue loading. We hypothesized that day-0 hysteresis, elongation, and stiffness of the loading and unloading load-displacement curves would be predictive of the 7-day molecular response. Results showed correlations between the 7-day molecular response and both day-0 elongation and unloading stiffness. Additionally, loading resulted in upregulation of several extracellular matrix genes that suggest adaptation; however, several of these genes (Col-I, -XII, MMP 2, and TIMP 3) shut down after a high level of damage was induced. We showed that evaluating the 7-day molecular profile in light of day-0 elongation provides important insight that is lost from comparing number of fatigue loading cycles only. Our data showed that loading generally results in an adaptive response. However, the tendon's ability to effectively respond deteriorates as greater damage is induced.

摘要

积累亚破裂性疲劳损伤与腱病的发生有关。我们之前开发了一种使用大鼠髌腱的体内损伤积累模型。我们的模型允许我们控制输入加载参数,以在肌腱中诱导疲劳损伤。尽管有这种精确的控制,但由于髌腱的大小或强度存在差异,导致的诱导损伤在动物之间可能会有所不同。在这项研究中,我们使用施加的循环次数和初始(第 0 天)参数来评估疲劳加载 7 天后的分子反应,这些参数表明诱导损伤。我们假设加载和卸载的加载-位移曲线的第 0 天滞后、伸长率和刚度将预测 7 天的分子反应。结果表明,7 天的分子反应与第 0 天的伸长率和卸载刚度之间存在相关性。此外,加载导致几种细胞外基质基因的上调,表明存在适应性;然而,在诱导高水平损伤后,其中一些基因(Col-I、-XII、MMP2 和 TIMP3)关闭。我们表明,根据第 0 天的伸长率评估 7 天的分子特征,可以提供从仅比较疲劳加载循环数中丢失的重要见解。我们的数据表明,加载通常会导致适应性反应。然而,随着损伤程度的增加,肌腱有效响应的能力会恶化。

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