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骨结构与小梁骨——旨在更好地理解年龄、性别和骨质疏松症的生物力学效应

Architecture and trabecular bone - toward an improved understanding of the biomechanical effects of age, sex and osteoporosis.

作者信息

Keaveny T M, Yeh O C

机构信息

Orthopaedic Biomechanics Laboratory, Department of Mechanical Engineering, University of California, Berkeley, CA 94720-1740, USA.

出版信息

J Musculoskelet Neuronal Interact. 2002 Mar;2(3):205-8.

Abstract

From an engineering perspective, trabecular bone is a highly complex material, being anisotropic with different strengths in tension, compression, and shear and with mechanical properties that vary widely across anatomic sites, and with aging and disease. While mechanical properties depend very much on volume fraction, the role of architecture and tissue material properties remain uncertain. In the context of osteoporosis, there is wide interest in the biomechanical role of architecture since this should lead to improved understanding of the disease and ultimately better diagnosis and drug treatment assessment. This study reviews what is known about architectural changes in trabecular bone associated with age, gender and osteoporosis and the role of these changes in the mechanical properties of bone. Recent development of three-dimensional high-resolution imaging technologies has provided more accurate measures of quantitative metrics of architecture, thereby providing new data and raising questions about earlier conclusions. Focusing on the hip and spine, this literature is synthesized and outstanding issues are identified. In addition, the changing paradigm of biomechanical research on trabecular architecture is addressed. Because of the complexity of the trabecular micromechanics, the prevailing approach to date can be classified as an inverse one, whereby candidate metrics of architecture are developed and tested for efficacy in an empirical trial-and-error fashion. In this approach, the biomechanics is treated only as an assay since it is not used to guide development of the candidate metrics. By contrast, a more forward approach is to study the associated micromechanics using engineering analysis and from that identify the metrics that in theory most affect mechanical properties. The latter approach, facilitated by the new high-resolution imaging techniques and increased computational power, is discussed in an attempt to direct attention to new types of architectural metrics that are independent of bone density and that should improve the ability to explain how age, gender and osteoporosis affect the mechanical properties of trabecular bone.

摘要

从工程学角度来看,松质骨是一种高度复杂的材料,具有各向异性,在拉伸、压缩和剪切时强度不同,其力学性能在不同解剖部位、随年龄增长和疾病变化差异很大。虽然力学性能在很大程度上取决于体积分数,但结构和组织材料特性的作用仍不明确。在骨质疏松症的背景下,人们对结构的生物力学作用非常感兴趣,因为这有助于更好地理解该疾病,并最终改善诊断和药物治疗评估。本研究回顾了与年龄、性别和骨质疏松症相关的松质骨结构变化以及这些变化在骨力学性能中的作用。三维高分辨率成像技术的最新发展提供了更准确的结构定量指标测量方法,从而提供了新数据并对早期结论提出了质疑。本文聚焦于髋部和脊柱,综合了这些文献并确定了突出问题。此外,还探讨了松质骨结构生物力学研究范式的转变。由于松质骨微观力学的复杂性,迄今为止普遍采用的方法可归类为逆向方法,即开发结构候选指标并通过经验试错方式测试其有效性。在这种方法中,生物力学仅被视为一种测定方法,因为它未用于指导候选指标的开发。相比之下,一种更具前瞻性的方法是使用工程分析研究相关的微观力学,并据此确定理论上对力学性能影响最大的指标。借助新的高分辨率成像技术和增强的计算能力,本文对后一种方法进行了讨论,旨在引导人们关注独立于骨密度的新型结构指标,这些指标应能提高解释年龄、性别和骨质疏松症如何影响松质骨力学性能的能力。

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