Wang Ji, Kazakia Galateia J, Zhou Bin, Shi X Tony, Guo X Edward
Bone Bioengineering Laboratory, Department of Biomedical Engineering, Columbia University, New York, NY, USA.
Musculoskeletal Quantitative Imaging Research Group, Department of Radiology and Biomedical Imaging, University of California, San Francisco, San Francisco, CA, USA.
J Bone Miner Res. 2015 Sep;30(9):1641-50. doi: 10.1002/jbmr.2498. Epub 2015 Jun 11.
Trabecular bone quality includes both microstructural and intrinsic tissue mineralization properties. However, the tissue mineralization in individual trabeculae of different trabecular types and orientations has not yet been investigated. The aim of this study was to develop an individual trabecula mineralization (ITM) analysis technique to determine tissue mineral density (TMD) distributions in plate- and rod-like trabeculae, respectively, and to compare the TMD of trabeculae along various orientations in micro-computed tomography (μCT) images of trabecular bone samples from the femoral neck, greater trochanter, and proximal tibia. ITM analyses indicated that trabecular plates, on average, had significantly higher TMD than trabecular rods. In addition, the distribution of TMD in trabecular plates depended on trabecular orientation with the lowest TMD in longitudinal plates and the highest TMD in transverse plates. Conversely, there was a relatively uniform distribution of TMD among trabecular rods, with respect to trabecular orientation. Further analyses of TMD distribution revealed that trabecular plates had higher mean and peak TMD, whereas trabecular rods had a wider TMD distribution and a larger portion of low mineralized trabeculae. Comparison of apparent Young's moduli derived from micro-finite element models with and without heterogeneous TMD demonstrated that heterogeneous TMD in trabecular plates had a significant influence on the elastic mechanical property of trabecular bone. In conclusion, this study revealed differences in TMD between plate- and rod-like trabeculae and among various trabecular orientations. The observation of less mineralized longitudinal trabecular plates suggests interesting implications of these load-bearing plates in bone remodeling. The newly developed ITM analysis can be a valuable technique to assess the influence of metabolic bone diseases and their pharmaceutical treatments on not only microstructure of trabecular bone but also the microarchitectural heterogeneity of tissue mineralization.
小梁骨质量包括微观结构和内在组织矿化特性。然而,不同小梁类型和方向的单个小梁中的组织矿化尚未得到研究。本研究的目的是开发一种个体小梁矿化(ITM)分析技术,分别测定板状和杆状小梁中的组织矿物质密度(TMD)分布,并比较股骨颈、大转子和胫骨近端小梁骨样本的微观计算机断层扫描(μCT)图像中不同方向小梁的TMD。ITM分析表明,平均而言,小梁板的TMD显著高于小梁杆。此外,小梁板中TMD的分布取决于小梁方向,纵向板中TMD最低,横向板中TMD最高。相反,小梁杆之间的TMD分布相对均匀,与小梁方向无关。对TMD分布的进一步分析表明,小梁板具有更高的平均和峰值TMD,而小梁杆具有更宽的TMD分布和更大比例的低矿化小梁。对具有和不具有异质TMD的微观有限元模型得出的表观杨氏模量进行比较表明,小梁板中的异质TMD对小梁骨的弹性力学性能有显著影响。总之,本研究揭示了板状和杆状小梁之间以及不同小梁方向之间TMD的差异。观察到纵向小梁板矿化较少,提示这些承重板在骨重塑中具有有趣的意义。新开发的ITM分析可以成为一种有价值的技术,用于评估代谢性骨疾病及其药物治疗不仅对小梁骨微观结构而且对组织矿化微结构异质性的影响。