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陆生哺乳动物中异速生长的小梁骨缩放的一种潜在机制。

A potential mechanism for allometric trabecular bone scaling in terrestrial mammals.

作者信息

Christen Patrik, Ito Keita, van Rietbergen Bert

机构信息

Orthopaedic Biomechanics, Department of Biomedical Engineering, Eindhoven University of Technology, Eindhoven, The Netherlands.

出版信息

J Anat. 2015 Mar;226(3):236-43. doi: 10.1111/joa.12278. Epub 2015 Feb 4.

Abstract

Trabecular bone microstructural parameters, including trabecular thickness, spacing, and number, have been reported to scale with animal size with negative allometry, whereas bone volume fraction is animal size-invariant in terrestrial mammals. As for the majority of scaling patterns described in animals, its underlying mechanism is unknown. However, it has also been found that osteocyte density is inversely related to animal size, possibly adapted to metabolic rate, which shows a negative relationship as well. In addition, the signalling reach of osteocytes is limited by the extent of the lacuno-canalicular network, depending on trabecular dimensions and thus also on animal size. Here we propose animal size-dependent variations in osteocyte density and their signalling influence distance as a potential mechanism for negative allometric trabecular bone scaling in terrestrial mammals. Using an established and tested computational model of bone modelling and remodelling, we run simulations with different osteocyte densities and influence distances mimicking six terrestrial mammals covering a large range of body masses. Simulated trabecular structures revealed negative allometric scaling for trabecular thickness, spacing, and number, constant bone volume fraction, and bone turnover rates inversely related to animal size. These results are in agreement with previous observations supporting our proposal of osteocyte density and influence distance variation as a potential mechanism for negative allometric trabecular bone scaling in terrestrial mammals. The inverse relationship between bone turnover rates and animal size further indicates that trabecular bone scaling may be linked to metabolic rather than mechanical adaptations.

摘要

据报道,包括骨小梁厚度、间距和数量在内的骨小梁微观结构参数随着动物体型的增大呈负异速生长变化,而骨体积分数在陆生哺乳动物中与动物体型无关。与动物中描述的大多数缩放模式一样,其潜在机制尚不清楚。然而,也有人发现骨细胞密度与动物体型呈负相关,这可能是为了适应代谢率,而代谢率也呈负相关。此外,骨细胞的信号传递范围受陷窝-小管网络范围的限制,这取决于骨小梁尺寸,因此也取决于动物体型。在这里,我们提出骨细胞密度的动物体型依赖性变化及其信号影响距离是陆生哺乳动物骨小梁负异速生长缩放的潜在机制。我们使用一个经过建立和测试的骨建模与重塑计算模型,模拟了不同骨细胞密度和影响距离的情况,这些情况模仿了六种体重范围广泛的陆生哺乳动物。模拟的骨小梁结构显示,骨小梁厚度、间距和数量呈负异速生长缩放,骨体积分数恒定,骨转换率与动物体型呈负相关。这些结果与之前的观察结果一致,支持了我们提出的骨细胞密度和影响距离变化是陆生哺乳动物骨小梁负异速生长缩放潜在机制的观点。骨转换率与动物体型之间的负相关进一步表明,骨小梁缩放可能与代谢适应而非机械适应有关。

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