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矿化胶原纤维:决定皮质骨力学行为的重要组成部分。

Mineralized Collagen Fibrils: An Essential Component in Determining the Mechanical Behavior of Cortical Bone.

机构信息

Key Laboratory for Space Bioscience and Biotechnology, School of Life Sciences, Northwestern Polytechnical University, Xi'an 710072, China.

Department of Medical Instrumentation Engineering Techniques, Electrical Engineering Technical College, Middle Technical University, 8998+QHJ Baghdad, Iraq.

出版信息

ACS Biomater Sci Eng. 2023 May 8;9(5):2203-2219. doi: 10.1021/acsbiomaterials.2c01377. Epub 2023 Apr 19.

Abstract

Bone comprises mechanically different materials in a specific hierarchical structure. Mineralized collagen fibrils (MCFs), represented by tropocollagen molecules and hydroxyapatite nanocrystals, are the fundamental unit of bone. The mechanical characterization of MCFs provides the unique adaptive mechanical competence to bone to withstand mechanical load. The structural and mechanical role of MCFs is critical in the deformation mechanisms of bone and the marvelous strength and toughness possessed by bone. However, the role of MCFs in the mechanical behavior of bone across multiple length scales is not fully understood. In the present study, we shed light upon the latest progress regarding bone deformation at multiple hierarchical levels and emphasize the role of MCFs during bone deformation. We propose the concept of of bone to describe the interconnected deformation process across multiple length scales of bone under mechanical loading. Furthermore, how the deterioration of bone caused by aging and diseases impairs the hierarchical deformation process of the cortical bone is discussed. The present work expects to provide insights on the characterization of MCFs in the mechanical properties of bone and lays the framework for the understanding of the multiscale deformation mechanics of bone.

摘要

骨骼由具有特定层次结构的力学性能不同的物质组成。矿化胶原纤维(MCFs)由原胶原蛋白分子和羟基磷灰石纳米晶体组成,是骨骼的基本单位。MCFs 的力学特性赋予了骨骼独特的适应力学性能,使其能够承受机械负荷。MCFs 的结构和力学作用对于骨骼的变形机制以及骨骼所具有的优异强度和韧性至关重要。然而,MCFs 在骨骼跨多个长度尺度的力学行为中的作用尚不完全清楚。在本研究中,我们介绍了在多个层次上研究骨骼变形的最新进展,并强调了 MCFs 在骨骼变形过程中的作用。我们提出了“骨的连通性”这一概念,用于描述骨骼在机械载荷下跨多个长度尺度的相互关联的变形过程。此外,还讨论了衰老和疾病导致的骨骼恶化如何损害皮质骨的层次变形过程。本工作期望为理解骨骼的多尺度变形力学提供有关 MCFs 在骨骼力学性能中的特征的见解,并为理解骨骼的多尺度变形力学奠定框架。

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