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Tendon Response to In Vivo Fatigue Damage

Tendon Response to In Vivo Fatigue Damage
肌腱对体内疲劳损伤的反应
批准号:
6958750
负责人:
Evan L Flatow
金额:
$26.06万
依托单位国家:
美国
项目类别:
财政年份:
2005
资助国家:
美国
项目状态:
已结题
起止时间:
2005-09-01 至 2010-08-31

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项目成果

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中文摘要
翻译
描述(申请人提供):肌腱病和肌腱断裂是导致疼痛和残疾的主要临床问题。许多研究表明,磨损和磨损造成的累积疲劳损伤是肌腱病肌腱退变的基础,这种损伤导致肌腱变弱导致断裂。尽管如此,对肌腱疲劳损伤累积的力学和微观结构机制知之甚少,肌腱对这种损伤做出反应的生物过程也不清楚。肌腱疾病的动物模型通常要么是急性撕裂模型,不能模拟肌腱在明显断裂之前出现的慢性退行性变,要么是运动过度使用模型,其机械侮辱定义不明确(例如,跑步机过度使用),不允许梳理肌腱对精确剂量的基质损伤的机械和生物反应。建议的研究将使用我们最近开发的大鼠髌腱模型,该模型允许在活体肌腱中产生亚失效疲劳损伤,以检验疲劳损伤肌腱随着时间的推移恢复正常结构和力学性能的假设。在第一系列研究中,我们将从力学和形态上描述在不同应力和不同损伤终点加载下的活体肌腱的疲劳过程。在实验2中,我们将在活的肌腱中引入不同程度的疲劳,并从力学和微观结构上检验这些肌腱如何随着时间的推移对这种损伤做出反应。在第三系列研究中,我们将在细胞和分子水平上确定肌腱对疲劳损伤的反应是否反映了正常的愈合,以及它是否使用了不同的机制。
英文摘要
DESCRIPTION (provided by applicant): Tendinopathy and tendon rupture are major clinical problems causing pain and disability. Many studies have suggested that accumulated fatigue damage from wear and tear underlies the tendon degeneration seen in tendinopathy and that this damage contributes to tendon weakening leading to rupture. Despite this, little is known about the mechanical and microstructural mechanisms of fatigue damage accumulation in tendons, and the biologic processes by which tendons respond to such damage are not understood. Animal models of tendon disease have generally been either acute laceration models which do not model the chronic degeneration seen in tendons prior to overt rupture, or exercise-overuse models with poorly defined mechanical insults (e.g. treadmill overuse) which do not allow teasing apart the tendon's mechanical and biologic response to precise doses of matrix injury. The proposed studies will use our recently developed rat patellar tendon model, which allows the production in living tendons of subfailure fatigue damage, to test the hypothesis that fatigue damaged tendons restore normal architecture and mechanical properties over time. In the first series of studies, we will characterize the fatigue process mechanically and and morphologically in living tendons at loaded at different stresses and to different damage endpoints. In experiment 2, we will introduce different levels of fatigue into living tendons, and examine mechanically and microstructurally how these tendon respond to this damage over time. In the third series of studies, we will determine at cellular and molecular levels whether tendon response to fatigue damage mirrors normal healing and whether it utilizes different mechanisms.
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Tendon Response to In Vivo Fatigue Damage
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