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首页> 外文期刊>Journal of Biomechanics >Bone remodelling algorithms incorporating both strain and microdamage stimuli.
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Bone remodelling algorithms incorporating both strain and microdamage stimuli.

机译:结合了应变和微损伤刺激的骨重塑算法。

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摘要

Biomechanical theories to predict bone remodelling have used either mechanical strain or microdamage as the stimulus driving cellular responses. Even though experimental data have implicated both stimuli in bone cell regulation, a mechano-regulatory system incorporating both stimuli has not yet been proposed. In this paper, we test the hypothesis that bone remodelling may be regulated by signals due to both strain and microdamage. Four mechano-regulation algorithms are studied where the stimulus is: strain, damage, combined strain/damage, and either strain or damage with damage-adaptive remodelling prioritised when damage is above a critical level. Each algorithm is implemented with both bone lining cell (surface) sensors and osteocyte cell (internal) sensors. Each algorithm is applied to prediction of a bone multicellular unit (BMU) remodelling on the surface of a bone trabecula. It is predicted that a regulatory system capable of responding to changes in either strain or microdamage but which prioritises removal of damaged bone when damage is above a critical level, is the only one that provides a plausible prediction of BMU behaviour. A mechanism for this may be that, below a certain damage threshold, osteocyte processes can sense changes in strain and fluid flow but above the threshold damage interferes with the signalling mechanism, or causes osteocyte apoptosis so that a remodelling response occurs to remove the dead osteocytes.
机译:预测骨骼重塑的生物力学理论已使用机械应变或微损伤作为驱动细胞反应的刺激。尽管实验数据已经将这两种刺激物都牵涉到骨细胞调节中,但尚未提出一种结合了这两种刺激物的机械调节系统。在本文中,我们测试了以下假设:由于应变和微损伤,骨骼重构可能受信号调节。研究了四种机械调节算法,其中刺激为:应变,损伤,组合应变/损伤,以及当损伤高于临界水平时,具有损伤适应性重塑的应变或损伤被优先考虑。每种算法都通过骨衬细胞(表面)传感器和骨细胞(内部)传感器实现。每种算法都适用于预测骨小梁表面上的骨多细胞单位(BMU)重塑。可以预测,一种能够对应变或微损伤的变化做出响应的调节系统,能够在损伤高于临界水平时优先去除受损的骨骼,是唯一可以合理预测BMU行为的调节系统。其机制可能是,在低于特定损伤阈值时,骨细胞过程可以感知应变和流体流量的变化,但在阈值损伤之上会干扰信号传导机制,或导致骨细胞凋亡,从而发生重塑反应以去除死去的骨细胞。 。

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