在墨西哥珠蜥骨皮的封盖组织中,由取向不佳的纳米晶体实现了珐琅质样的硬度。

IF 9.6 1区 医学 Q1 ENGINEERING, BIOMEDICAL
Adrian Rodriguez-Palomo , Malene Siri Berg Jacobsen , Thorbjørn Erik Køppen Christensen , Mads Ry Vogel Jørgensen , Innokenty Kantor , Gabriella Willan , Anthony Herrel , Arsalan Marghoub , Mehran Moazen , Susan Evans , Matthew Vickaryous , Catherine J.A. Williams , Henrik Birkedal
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引用次数: 0

摘要

骨皮细胞是皮肤中的骨骼结构,存在于许多动物身上,具有不同的作用。在一些蜥蜴中,骨性骨皮有一个覆盖组织(CT),其组成和结构尚不清楚。本文研究了墨西哥珠蜥(Heloderma hordum)骨皮的组成和纳米结构。CT高度矿化,具有极高的弹性模量。在骨皮层内,帽层和骨组织之间的过渡区在浅层CT上形成矿化渐变增加。与其他矿化组织的例子不同,CT显示了物理性质和纳米结构组织的新组合。它的硬度和硬度与牙釉质相似,羟基磷灰石晶体比骨组织中的晶体大一个数量级,因此让人联想到牙釉质晶体。然而,与牙釉质形成鲜明对比的是,CT只显示了最小的首选晶状体方向。因此,它具有非常高的机械性能,具有类似搪瓷的晶体尺寸,但具有近各向同性的微观结构取向。墨西哥串珠蜥蜴CT呈现出一种非常不寻常的结构设计,从而产生高性能的力学性能。重要意义:脊椎动物中最坚硬的组织是牙釉质,其特点是大而高度定向的纳米晶体。较不坚硬的骨头具有较小的纳米晶体和较低但仍然很高的质地。本文采用力学测试、空间分辨x射线衍射和荧光以及3D x射线成像相结合的方法对墨西哥珠蜥的骨皮进行了研究。令人惊讶的是,骨皮有一个像珐琅一样坚硬的封盖组织,晶体比下面的骨头大得多,但纹理却少得多。这为硬生物组织提供了一种新型的设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Enamel-like stiffness achieved by poorly oriented nanocrystals in the capping tissue of Mexican beaded lizard osteoderms

Enamel-like stiffness achieved by poorly oriented nanocrystals in the capping tissue of Mexican beaded lizard osteoderms
Osteoderms, skeletal structures in the skin, are found in many animals and serve diverse roles. In some lizards, the bony osteoderm has a capping tissue (CT) whose composition and structure remain unknown. Here, the composition and nanostructure of osteoderms from the Mexican beaded lizard (Heloderma horridum) are investigated. The CT is highly mineralized with an extraordinarily high elastic modulus. Within the osteoderm, a transition zone between capping and bone tissue forms a graded increase in mineralization towards the superficial CT. Unlike other examples of mineralized tissues, the CT demonstrates a new combination of physical properties and nanostructural organization. It displays stiffness and hardness similar to enamel, and hydroxyapatite crystals that are an order of magnitude larger than those within the bone tissue and are, thus, reminiscent of enamel crystals. However, in stark contrast to enamel, the CT displays only minimal preferred orientation of the crystallites. Thus, it achieves very high mechanical properties with enamel-like crystal sizes but with near-isotropic microstructural orientation. The Mexican beaded lizard CT presents a highly unusual structural design resulting in high-performance mechanics.

Statement of Significance

The stiffest tissue in vertebrates is enamel, which is characterized by large, highly oriented nanocrystals. The less stiff bone has smaller nanocrystals and a lower, but still high degree of texture. The osteoderms of the Mexican beaded lizard are herein investigated by a combination of mechanical testing, spatially resolved X-ray diffraction and fluorescence, and 3D X-ray imaging. Surprisingly, the osteoderms have a capping tissue with enamel-like stiffness, significantly larger crystals than the underlying bone but are much less textured. This provides a new type of design for hard biological tissues.
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来源期刊
Acta Biomaterialia
Acta Biomaterialia 工程技术-材料科学:生物材料
CiteScore
16.80
自引率
3.10%
发文量
776
审稿时长
30 days
期刊介绍: Acta Biomaterialia is a monthly peer-reviewed scientific journal published by Elsevier. The journal was established in January 2005. The editor-in-chief is W.R. Wagner (University of Pittsburgh). The journal covers research in biomaterials science, including the interrelationship of biomaterial structure and function from macroscale to nanoscale. Topical coverage includes biomedical and biocompatible materials.
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