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交错生物阵列中细胞外纤维相的刚性。

Stiffness of the extrafibrillar phase in staggered biological arrays.

机构信息

Department of Materials and Interfaces, Weizmann Institute of Science, Rehovot, Israel.

出版信息

Phys Rev Lett. 2012 Aug 17;109(7):078102. doi: 10.1103/PhysRevLett.109.078102. Epub 2012 Aug 16.

Abstract

A number of important biological tissues such as nacre, tendon, and bone consist of staggered structural arrays as universal motifs. Such arrays usually include stiff fibril-like (or plateletlike, or needlelike) elements embedded in an extrafibrillar (XF) phase. This work discusses the effect of the stiffness of such an XF matrix on the elastic properties of the resulting staggered composite. In the case of most biological composites, this XF stiffness is hardly accessible and very little data are available. We develop an analysis based on previous analytical formulation that results in a relation between the XF modulus and the deformations of the staggered particles. This analysis is then used to back-calculate the yet unmeasured modulus of the XF phase from experimental deformation data, thereby providing a simple alternative to potentially complex direct measurements. This is demonstrated and validated for parallel-fiber bone tissue.

摘要

许多重要的生物组织,如珍珠层、肌腱和骨骼,都由交错的结构阵列组成,这些阵列通常包括嵌入在纤维外相(XF)中的刚性纤维状(或板状、针状)元素。这项工作讨论了这种 XF 基质的刚度对所得交错复合材料弹性性能的影响。在大多数生物复合材料的情况下,这种 XF 刚度是难以获得的,并且可用的数据很少。我们开发了一种基于先前分析公式的分析方法,该方法得出了 XF 模量与交错颗粒变形之间的关系。然后,该分析用于从实验变形数据反算尚未测量的 XF 相的模量,从而为潜在复杂的直接测量提供了一种简单的替代方法。这在平行纤维骨组织中得到了证明和验证。

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