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骨的成分和结构表征方面的进展,为力学结果和建模提供信息。

Advancements in composition and structural characterization of bone to inform mechanical outcomes and modelling.

作者信息

Bolger Morgan W, Romanowicz Genevieve E, Kohn David H

机构信息

Biomedical Engineering, College of Engineering, University of Michigan, MI, USA.

Department of Biologic and Materials Sciences, School of Dentistry, University of Michigan, MI, USA.

出版信息

Curr Opin Biomed Eng. 2019 Sep;11:76-84. doi: 10.1016/j.cobme.2019.09.011. Epub 2019 Sep 28.

Abstract

Advancements in imaging, computing, microscopy, chromatography, spectroscopy and biological manipulations of animal models, have allowed for a more thorough examination of the hierarchical structure and composition of the skeleton. The ability to map cellular and molecular changes to nano-scale chemical composition changes (mineral, collagen cross-links) and structural changes (porosity, lacuno-canalicular network) to whole bone mechanics is at the forefront of an exciting era of discovery. In addition, there is increasing ability to genetically mimic phenotypes of human disease in animal models to study these structural and compositional changes. Combined, these recent developments have increased the ability to understand perturbations at multiple length scales to better realize the structure-function relationship in bone and inform biomechanical models. The intent of this review is to describe the multiple scales at which bone can characterized, highlighting new techniques such that structural, compositional, and biological changes can be incorporated into biomechanical modeling.

摘要

成像、计算、显微镜技术、色谱法、光谱学以及动物模型的生物操作等方面的进展,使得对骨骼的层次结构和组成进行更全面的研究成为可能。将细胞和分子变化与纳米级化学成分变化(矿物质、胶原交联)以及结构变化(孔隙率、骨陷窝-骨小管网络)映射到全骨力学的能力,处于一个令人兴奋的发现时代的前沿。此外,在动物模型中通过基因模拟人类疾病表型来研究这些结构和组成变化的能力也在不断提高。综合起来,这些最新进展增强了在多个长度尺度上理解扰动的能力,以便更好地认识骨骼中的结构-功能关系,并为生物力学模型提供信息。本综述的目的是描述骨骼可以被表征的多个尺度,重点介绍新技术,以便将结构、组成和生物学变化纳入生物力学建模。

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