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用于评估机械刺激对组织工程骨修复影响的体内模型。

In vivo model for evaluating the effects of mechanical stimulation on tissue-engineered bone repair.

作者信息

Boerckel Joel D, Dupont Kenneth M, Kolambkar Yash M, Lin Angela S P, Guldberg Robert E

机构信息

G. W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, 315 Ferst Drive, Atlanta, GA 30332, USA.

出版信息

J Biomech Eng. 2009 Aug;131(8):084502. doi: 10.1115/1.3148472.

Abstract

It has long been known that the bone adapts according to the local mechanical environment. To date, however, a model for studying the effects of functional mechanical loading on tissue-engineered bone repair in vivo has not yet been established. We have developed a rat femoral defect model, in which ambulatory loads are transduced through the implanted tissue-engineered construct to elucidate the role of the mechanical environment in functional restoration of a large bone defect. This model uses compliant fixation plates with integrated elastomeric segments, which allow transduction of ambulatory loads. Multiaxially and uniaxially compliant plates were characterized by mechanical testing and evaluated using in vivo pilot studies. In the first study, experimental limbs were implanted with multiaxial plates, which have a low stiffness in multiple loading modes. In the second study, experimental limbs were stabilized by a uniaxial plate, which allowed only axial deformation of the defect. X-ray scans and mechanical testing revealed that the multiaxial plates were insufficient to stabilize the defect and prevent fracture under ambulatory loads as a result of low flexural and torsional stiffness. The uniaxial plates, however, maintained integrity of the defect when implanted over a 12 week period. Postmortem microCT scans revealed a 19% increase in bone volume in the axially loaded limb compared with the contralateral standard control, and postmortem mechanical testing indicated that torsional strength and stiffness were increased 25.6- and 3.9-fold, respectively, compared with the control. Finite element modeling revealed high strain gradients in the soft tissue adjacent to the newly formed bone within the implanted construct. This study introduces an in vivo model for studying the effects of physiological mechanical loading on tissue-engineered bone repair. Preliminary results using this new in vivo model with the uniaxially compliant plate showed positive effects of load-bearing on functional defect repair.

摘要

长期以来,人们一直知道骨骼会根据局部力学环境进行适应性变化。然而,迄今为止,尚未建立用于研究功能性机械负荷对体内组织工程骨修复影响的模型。我们开发了一种大鼠股骨缺损模型,通过植入的组织工程构建体传导动态负荷,以阐明力学环境在大骨缺损功能恢复中的作用。该模型使用带有集成弹性体段的柔性固定板,可传导动态负荷。通过力学测试对多轴和单轴柔性板进行了表征,并使用体内初步研究进行了评估。在第一项研究中,实验肢体植入了多轴板,该板在多种加载模式下具有低刚度。在第二项研究中,实验肢体通过单轴板进行固定,该板仅允许缺损轴向变形。X射线扫描和力学测试表明,由于弯曲和扭转刚度较低,多轴板不足以在动态负荷下稳定缺损并防止骨折。然而,单轴板在植入12周期间保持了缺损的完整性。死后微计算机断层扫描(microCT)显示,与对侧标准对照组相比,轴向加载肢体的骨体积增加了19%,死后力学测试表明,与对照组相比,扭转强度和刚度分别提高了25.6倍和3.9倍。有限元建模显示,植入构建体内新形成骨附近的软组织中存在高应变梯度。本研究引入了一种用于研究生理机械负荷对组织工程骨修复影响的体内模型。使用这种带有单轴柔性板的新体内模型的初步结果表明,负重对功能性缺损修复具有积极作用。

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