首页> 外文期刊>Medical and Biological Engineering and Computing: Journal of the International Federation for Medical and Biological Engineering >Change of mechanical vertebrae properties due to progressive osteoporosis: Combined biomechanical and finite-element analysis within a rat model
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Change of mechanical vertebrae properties due to progressive osteoporosis: Combined biomechanical and finite-element analysis within a rat model

机译:进行性骨质疏松症引起的椎骨机械特性的变化:大鼠模型内的生物力学和有限元分析相结合

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摘要

For assessing mechanical properties of osteoporotic bone, biomechanical testing combined with in silico modeling plays a key role. The present study focuses on microscopic mechanical bone properties in a rat model of postmenopausal osteoporosis. Female Sprague-Dawley rats were (1) euthanized without prior interventions, (2) sham-operated, and (3) subjected to ovariectomy combined with a multi-deficiencies diet. Rat vertebrae (corpora vertebrae) were imaged by micro-CT, their stiffness was determined by compression tests, and load-induced stress states as well as property changes due to the treatment were analyzed by finite-element modeling. By comparing vertebra stiffness measurements with finite-element calculations of stiffness, an overall microscopic Young's modulus of the bone was determined. Macroscopic vertebra stiffness as well as the microscopic modulus diminish with progression of osteoporosis by about 70 %. After strong initial changes of bone morphology, further decrease in macroscopic stiffness is largely due to decreasing microscopic Young's modulus. The micromechanical stress calculations reveal particularly loaded vertebra regions prone to failure. Osteoporosis-induced changes of the microscopic Young's modulus alter the fracture behavior of bone, may influence bone remodeling, and should be considered in the design of implant materials.
机译:为了评估骨质疏松骨的机械性能,生物力学测试与计算机模拟相结合起着关键作用。本研究集中于绝经后骨质疏松症大鼠模型的微观机械骨特性。对雌性Sprague-Dawley大鼠进行(1)无需事先干预就实施安乐死;(2)假手术;(3)进行卵巢切除术并伴有多种饮食。通过微型CT对大鼠椎骨(体体椎骨)成像,通过压缩试验确定其刚度,并通过有限元建模分析载荷引起的应力状态以及由于处理引起的性能变化。通过将椎骨刚度测量值与刚度的有限元计算进行比较,可以确定骨骼的总体微观杨氏模量。随着骨质疏松的进展,宏观椎体刚度以及微观模量降低约70%。在骨骼形态发生了强烈的初始变化之后,宏观刚度的进一步下降主要是由于微观杨氏模量的降低。微机械应力计算揭示了特别容易发生破坏的椎骨区域。骨质疏松症引起的微观杨氏模量的变化会改变骨骼的骨折行为,可能影响骨骼的重塑,因此在植入材料的设计中应予以考虑。

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