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MEASUREMENTS OF IN VIVO STRAINS IN THE RAT TAIL VERTEBRA

机译:大鼠尾椎活体应变的测量

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摘要

The study of bone adaptation is important in understanding the etiology of age-related bone fractures, developing optimal designs for total joint replacements, and preventing bone loss during prolonged space flight. Numerous studies have attempted to quantify the relationship between mechanical loading and bone adaptation An in vivo rat tail vertebra model has been developed for trabecular bone adaptation studies where a controlled mechanical load can be applied to a whole vertebra. The load levels applied in vivo were selected using in vitro strain gage measurements on cadaveric rat tails, resulting strains in the cortical shell of tail vertebrae within the physiological range. However, it is not clear what the physiological strain level in the rat tail vertebrae in vivo during normal cage activities is. In addition, the in vivo strain in the rat tail vertebra subjected to mechanical loads has not been quantified. Therefore, the objectives of this study were to (1) determine the in vivo strains in the cortical bone surface of rat tail vertebrae while the animal is under normal physiological activity (walking around its cage) (2) determine those in vivo strains when the rat tail vertebra is immobilized, under normal physiological activity, and (3) determine the in vivo cortical bone surface strains in the rat tail vertebra under various levels of controlled mechanical loads.
机译:骨骼适应性研究对于理解与年龄相关的骨折的病因,开发全关节置换的最佳设计以及防止长时间太空飞行中的骨质流失至关重要。大量研究试图量化机械负荷与骨骼适应之间的关系。已经开发出了体内大鼠尾椎骨模型用于小梁骨适应性研究,其中可将受控的机械负荷施加到整个椎骨上。使用尸体大鼠尾巴上的体外应变计测量来选择体内施加的负荷水平,从而在生理范围内在尾椎骨皮层中产生应变。然而,尚不清楚在正常的笼活动期间,大鼠尾椎体内的生理应变水平是多少。另外,还没有量化受到机械负荷的大鼠尾椎体内的应变。因此,这项研究的目的是(1)确定处于正常生理活动状态(在笼中行走)的大鼠尾椎骨皮质表面的体内菌株(2)确定当在正常生理活动下将大鼠尾椎固定,并且(3)在各种水平的受控机械载荷下确定大鼠尾椎体内的皮质壁骨表面应变。

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