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Load-induced changes in bone stiffness and cancellous and cortical bone mass following tibial compression diminish with age in female mice

机译:雌性小鼠因胫骨受压而引起的骨骼僵硬以及松质和皮质骨量的负荷诱导变化随年龄的增长而减小

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摘要

The vertebrate skeleton is an adaptive structure that responds to mechanical stimuli by increasing bone mass under increased mechanical loads. Although experimental animal models have shown the anabolic cortical bone response to applied load decreases with age, no consensus exists regarding whether this adaptive mechanism is affected by age in cancellous bone, the tissue most impacted by age-related bone loss. We used an established murine in vivo tibial loading model to characterize the load-induced cancellous, cortical and whole-bone responses to mechanical stimuli in growing and mature female mice at 6, 10 and 16 weeks of age. The effects of applied load on tibial morphology and stiffness were determined using microcomputed tomography and in vivo bone strains measured at the medial tibial midshaft during applied loading. At all ages, 2 weeks of applied load produced larger midshaft cortical cross-sectional properties (+13–72%) and greater cancellous bone volume (+21–107%) and thicker trabeculae (+31–68%) in the proximal metaphyses of the loaded tibiae. The relative anabolic response decreased from 6 to 16 weeks of age in both the cancellous and cortical envelopes. Load-induced tibial stresses decreased more in 6-week-old mice following loading, which corresponded to increased in vivo tibial stiffness. Stiffness in the loaded tibiae of 16-week-old mice decreased despite moderately increased cortical cross-sectional geometry, suggesting load-induced changes in bone material properties. This study shows that the cancellous and cortical anabolic responses to mechanical stimuli decline with age into adulthood and that cortical cross-sectional geometry alone does not necessarily predict whole-bone functional stiffness.
机译:脊椎动物骨骼是一种适应性结构,通过在增加的机械负荷下增加骨量来响应机械刺激。尽管实验动物模型显示合成代谢皮质骨对施加的负荷的反应随着年龄的增长而降低,但关于这种适应性机制是否受年龄影响的松质骨(受年龄相关的骨丢失影响最大的组织)尚无共识。我们使用已建立的小鼠体内胫骨负荷模型来表征负荷诱导的生长,成年雌性小鼠在6、10和16周龄时对机械刺激的松质,皮质和全骨反应。使用微型计算机断层扫描以及在施加负荷期间在胫骨中轴测量的体内骨骼应变确定了施加负荷对胫骨形态和硬度的影响。在所有年龄段,施加2周的载荷都会在近端干meta端产生更大的中轴皮质横截面特性(+ 13–72%),更大的松质骨体积(+ 21–107%)和更小梁(+ 31–68%)的胫骨。松质和皮质包膜的相对合成代谢反应从6周龄降低到16周龄。负荷后,负荷诱导的胫骨应力在6周龄小鼠中下降得更多,这与体内胫骨刚度增加相对应。尽管皮质横截面的几何形状适度增加,但16周龄小鼠的胫骨负重刚度有所降低,这表明骨骼材料性质受到负荷诱导的变化。这项研究表明,成年后成年对机械刺激的松质和皮质合成代谢反应随年龄的增长而下降,而且仅皮质横截面几何形状并不一定能预测全骨功能僵硬。

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