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Cancellous bone adaptation to in vivo loading in a rabbit model

机译:松质骨适应兔模型的体内负荷

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摘要

Biophysical stimuli are important to the development and maintenance of cancellous bone, but the regulatory mechanisms need to be understood. We investigated the effects of mechanical loading applied in vivo to native cancellous bone in the rabbit on bone formation and trabecular realignment. A novel device was developed to apply controlled compressive loads to cancellous bone in situ. The effect of loading on cancellous bone volume fraction and architecture was quantified. A 4 week experiment was performed in rabbits with devices implanted bilaterally. Cyclic 1 MPa pressures were applied daily to the right limb for 10, 25, or 50 cycles at 0.5 Hz, and the left limb served as the control without any applied loading. Microcomputed tomography and histomorphometry were used to characterize the cancellous tissue within a 4-mm spherical volume located below the loading core. In vivo cyclic loading significantly increased the bone volume fraction, direct trabecular thickness, mean intercept length, and mineral apposition rate in the loaded limbs compared with contralateral limbs. Insufficient evidence was found to demonstrate an effect of number of cycles on the cancellous adaptation between loaded and control limbs. Using a rabbit model, we demonstrated that mechanical loading applied to cancellous bone in situ increased bone formation and altered trabecular morphology. This in vivo model will allow further investigation of cancellous functional adaptation to controlled mechanical stimuli and the influence of mechanical loading parameters, metabolic status, and therapeutic agents.
机译:生物物理刺激对于松质骨的发育和维持很重要,但是调节机制需要了解。我们调查了在体内对兔的天然松质骨施加机械负荷对骨形成和小梁排列的影响。开发了一种新颖的装置,以将受控的压缩载荷原位施加到松质骨上。定量加载对松质骨体积分数和结构的影响。在兔子中进行了为期4周的实验,两侧植入了设备。每天以0.5 Hz的频率向右肢施加1 MPa的循环压力,进行10、25或50个循环,并在不施加任何负载的情况下将左肢作为对照。使用微计算机断层扫描和组织形态学来表征位于负载核心下方4毫米球形体积内的松质组织。与对侧肢体相比,体内循环载荷显着增加了所载荷肢体的骨体积分数,直接小梁厚度,平均截距长度和矿物质沉积率。发现不足的证据证明循环次数对负重肢体和对照肢体的松质适应性有影响。使用兔模型,我们证明了对松质骨原位施加机械负荷会增加骨形成并改变小梁的形态。该体内模型将允许进一​​步研究松质功能对受控机械刺激的适应性以及机械负荷参数,代谢状态和治疗剂的影响。

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