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骨质疏松性和低骨量性骨折中股骨头软骨和软骨下骨小梁的生物力学。

Biomechanics of the Femoral Head Cartilage and Subchondral Trabecular Bone in Osteoporotic and Osteopenic Fractures.

机构信息

Department of Mechanical Engineering, Faculty of Engineering, Ege University, Bornova, 35100, Izmir, Turkey.

Department of Orthopedics and Traumatology, Kayseri City Hospital, 38080, Kayseri, Turkey.

出版信息

Ann Biomed Eng. 2021 Dec;49(12):3388-3400. doi: 10.1007/s10439-021-02861-5. Epub 2021 Sep 1.

Abstract

This study aimed to investigate the relationship between the micro structural properties of the subchondral trabecular bone (STB) and the macro mechanical properties of the articular cartilage (AC) in patients with osteoporotic (OP) and osteopenic (OPE) fractures. Sixteen femoral head samples (OP;OPE, n = 8 each) were obtained from female patients who underwent hip hemiarthroplasty. STB and AC specimens were harvested from those heads. Bone specimens were scanned using µ-CT to determine the micro structural properties. In-situ nondestructive compressive tests were performed for the cartilages to obtain elastic properties. The finite element technique was implemented on STB models created from µ-CT data to compute apparent elastic modulus. In addition, dynamic cyclic destructive tests were performed on STB and AC specimens to assess failure cycles. The results demonstrated that STB specimens in OPE group have more interconnected structure and higher cyclic dynamic strength than those in OP group. Furthermore, bone mineral density, failure cycle, and trabecular number of STB were positively correlated with the cartilage failure cycle, which indicates that STB alteration may affect the macroscopic mechanical properties of AC. The findings suggest that STB loss correlates with a decrease in cartilage strength and that improving of bone quality may prevent cartilage weakness.

摘要

本研究旨在探讨骨质疏松(OP)和低骨量(OPE)骨折患者的软骨下骨小梁(STB)微观结构特性与关节软骨(AC)宏观力学特性之间的关系。从接受髋关节半髋关节置换术的女性患者中获得了 16 个股骨头样本(OP;OPE,每组 8 个)。从这些头部采集 STB 和 AC 标本。使用 µ-CT 对骨标本进行扫描以确定微观结构特性。对软骨进行原位无损压缩试验以获得弹性特性。实施了有限元技术,以从 µ-CT 数据创建的 STB 模型计算表观弹性模量。此外,对 STB 和 AC 标本进行动态循环破坏性试验,以评估失效循环。结果表明,OPE 组的 STB 标本具有比 OP 组更多的相互连接结构和更高的循环动态强度。此外,STB 的骨矿物质密度、失效循环和小梁数量与软骨失效循环呈正相关,这表明 STB 的改变可能会影响 AC 的宏观力学特性。研究结果表明,STB 丢失与软骨强度降低相关,改善骨质量可能预防软骨变弱。

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