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Physics of animal health: on the mechano-biology of hoof growth and form

机译:动物健康物理学:关于蹄的生长和形态的力学生物学

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摘要

Global inequalities in economic access and agriculture productivity imply that a large number of developing countries rely on working equids for transport/agriculture/mining. Therefore, the understanding of hoof conditions/shape variations affecting equids' ability to work is still a persistent concern. To bridge this gap, using a multi-scale interdisciplinary approach, we provide a bio-physical model predicting the shape of equids’ hooves as a function of physical and biological parameters. In particular, we show (i) where the hoof growth stress originates from, (ii) why the hoof growth rate is one order of magnitude higher than the proliferation rate of epithelial cells and (iii) how the soft-to-hard transformation of the epithelium is possible allowing the hoof to fulfil its function as a weight-bearing element. Finally (iv), we demonstrate that the reason for hoof misshaping is linked to the asymmetrical design of equids' feet (shorter quarters/long toe) together with the inability of the biological growth stress to compensate for such an asymmetry. Consequently, the hoof can adopt a dorsal curvature and become ‘dished’ overtime, which is a function of the animal's mass and the hoof growth rate. This approach allows us to discuss the potential occurrence of this multifaceted pathology in equids.
机译:全球在经济准入和农业生产率方面的不平等现象意味着,许多发展中国家依赖于劳动条件进行运输/农业/采矿。因此,对影响马匹工作能力的蹄条件/形状变化的理解仍然是一个持续的问题。为了弥合这一差距,我们使用多尺度的跨学科方法,提供了一种生物物理模型,可以预测马蹄的形状作为物理和生物学参数的函数。特别是,我们显示了(i)蹄生长压力的来源,(ii)为什么蹄生长速度比上皮细胞的增殖速度高一个数量级,以及(iii)蹄的软硬转变如何上皮是可能的,从而允许蹄履行其作为承重元件的功能。最后(iv),我们证明了蹄意外的原因与马蹄脚的不对称设计(短四分之一/长脚趾)以及生物生长压力无法补偿这种不对称有关。因此,蹄可能会出现背侧弯曲,并随着时间的增长而“消退”,这取决于动物的体重和蹄的生长速度。这种方法使我们能够讨论等式中这种多方面病理的潜在发生。

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