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整体骨力学和骨质量。

Whole bone mechanics and bone quality.

机构信息

Department of Chemistry, University of Michigan, Ann Arbor, MI, USA.

出版信息

Clin Orthop Relat Res. 2011 Aug;469(8):2139-49. doi: 10.1007/s11999-011-1784-3.

Abstract

BACKGROUND

The skeleton plays a critical structural role in bearing functional loads, and failure to do so results in fracture. As we evaluate new therapeutics and consider treatments to prevent skeletal fractures, understanding the basic mechanics underlying whole bone testing and the key principles and characteristics contributing to the structural strength of a bone is critical.

QUESTIONS/PURPOSES: We therefore asked: (1) How are whole bone mechanical tests performed and what are the key outcomes measured? (2) How do the intrinsic characteristics of bone tissue contribute to the mechanical properties of a whole bone? (3) What are the effects of extrinsic characteristics on whole bone mechanical behavior? (4) Do environmental factors affect whole bone mechanical properties?

METHODS

We conducted a PubMed search using specific search terms and limiting our included articles to those related to in vitro testing of whole bones. Basic solid mechanics concepts are summarized in the context of whole bone testing and the determinants of whole bone behavior.

RESULTS

Whole bone mechanical tests measure structural stiffness and strength from load-deformation data. Whole bone stiffness and strength are a function of total bone mass and the tissue geometric distribution and material properties. Age, sex, genetics, diet, and activity contribute to bone structural performance and affect the incidence of skeletal fractures.

CONCLUSIONS

Understanding and preventing skeletal fractures is clinically important. Laboratory tests of whole bone strength are currently the only measures for in vivo fracture prediction. In the future, combined imaging and engineering models may be able to predict whole bone strength noninvasively.

摘要

背景

骨骼在承受功能负荷方面起着至关重要的结构作用,如果不能承受这些负荷,就会导致骨折。在评估新的治疗方法并考虑预防骨骼骨折的治疗方法时,了解整个骨骼测试的基本力学原理以及构成骨骼结构强度的关键原则和特征至关重要。

问题/目的:因此,我们提出了以下问题:(1)如何进行整体骨骼机械测试,测量哪些关键结果?(2)骨骼组织的固有特性如何影响整个骨骼的力学性能?(3)外在特征对整个骨骼机械行为有什么影响?(4)环境因素会影响整个骨骼的机械性能吗?

方法

我们使用特定的搜索词在 PubMed 上进行了搜索,并将纳入的文章限制为与整体骨骼体外测试相关的文章。在整体骨骼测试的背景下总结了基本的固体力学概念,以及决定整体骨骼行为的因素。

结果

整体骨骼机械测试通过载荷-变形数据测量结构刚度和强度。整体骨骼的刚度和强度是总骨量以及组织几何分布和材料特性的函数。年龄、性别、遗传、饮食和活动都会影响骨骼的结构性能,并影响骨骼骨折的发生率。

结论

了解和预防骨骼骨折在临床上很重要。目前,实验室测试整体骨骼强度是唯一可用于预测体内骨折的方法。将来,结合成像和工程模型可能能够非侵入性地预测整体骨骼强度。

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