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The orthotropic elastic properties of fibrolamellar bone tissue in juvenile white‐tailed deer femora

机译:少年白尾鹿股骨纤维状骨组织的正交各向异性弹性

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摘要

Fibrolamellar bone is a transient primary bone tissue found in fast‐growing juvenile mammals, several species of birds and large dinosaurs. Despite the fact that this bone tissue is prevalent in many species, the vast majority of bone structural and mechanical studies are focused on human osteonal bone tissue. Previous research revealed the orthotropic structure of fibrolamellar bone, but only a handful of experiments investigated its elastic properties, mostly in the axial direction. Here we have performed for the first time an extensive biomechanical study to determine the elastic properties of fibrolamellar bone in all three orthogonal directions. We have tested 30 fibrolamellar bone cubes (2 × 2 × 2 mm) from the femora of five juvenile white‐tailed deer (Odocoileus virginianus) in compression. Each bone cube was compressed iteratively, within its elastic region, in the axial, transverse and radial directions, and bone stiffness (Young's modulus) was recorded. Next, the cubes were kept for 7 days at 4 °C and then compressed again to test whether bone stiffness had significantly deteriorated. Our results demonstrated that bone tissue in the deer femora has an orthotropic elastic behavior where the highest stiffness was in the axial direction followed by the transverse and the radial directions (21.6 ± 3.3, 17.6 ± 3.0 and 14.9 ± 1.9 Gpa, respectively). Our results also revealed a slight non‐significant decrease in bone stiffness after 7 days. Finally, our sample size allowed us to establish that population variance was much bigger in the axial direction than the radial direction, potentially reflecting bone adaptation to the large diversity in loading activity between individuals in the loading direction (axial) compared with the normal (radial) direction. This study confirms that the mechanically well‐studied human transverse‐isotropic osteonal bone is just one possible functional adaptation of bone tissue and that other vertebrate species use an orthotropic bone tissue structure which is more suitable for their mechanical requirements.
机译:纤维状薄层骨是在快速生长的幼年哺乳动物,几种鸟类和大型恐龙中发现的瞬时初级骨组织。尽管事实上这种骨骼组织在许多物种中都很普遍,但绝大多数骨骼结构和力学研究都集中在人类骨骼骨组织上。先前的研究揭示了纤维状薄层骨的正交各向异性结构,但只有少数实验研究了其弹性特性,主要是在轴向上。在这里,我们首次进行了广泛的生物力学研究,以确定在所有三个正交方向上的纤维状薄层骨的弹性特性。我们已经对五只幼年白尾鹿(Odocoileus virginianus)的股骨中的30个纤维状层状立方体进行了测试(2×2×2mm)。每个骨块在其弹性区域内沿轴向,横向和径向反复压缩,并记录骨刚度(杨氏模量)。接下来,将立方体在4°C下放置7天,然后再次压缩以测试骨骼刚度是否显着下降。我们的结果表明,鹿股骨的骨组织具有正交各向异性的弹性行为,其中最高的硬度沿轴向,然后是横向和径向(分别为21.6±3.3、17.6±3.0和14.9±1.9 Gpa)。我们的结果还显示,在7天后,骨骼刚度略有非显着下降。最后,我们的样本量使我们能够确定,轴向上的总体方差比径向上的大得多,这可能反映了骨骼与正常方向(径向)相比,在加载方向(轴向)上个体之间的加载活动的多样性大。 )方向。这项研究证实,经过机械研究的人的横观各向同性骨质骨骼只是骨骼组织的一种可能的功能适应,其他脊椎动物物种使用的正交各向异性骨组织结构更适合其机械需求。

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