The Effects of Freezing on the Mechanical Properties of Bone

Bryan Kaye, C. Randall, Daniel J Walsh, P. Hansma
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引用次数: 40

Abstract

The serious health risks posed by bone fractures create a growing need for accurately diagnosing fracture risk. The Reference Point Indentation instrument (RPI) directly measures key mechanical properties in vivo to assess bone fracturability. There is a wealth of information that could be obtained from measuring cryopreserved bone samples with the RPI. Since it is unknown how freezing affects these key mechanical properties, measuring a cryopreserved sample gives no indication of the sample's original fracturability. Although there is research on how freezing affects the various mechanical properties of bone, this is the first paper to show how freezing effects the RPI's measurement of fracturability. Bovine femur and human tibia were tested using the RPI before freezing (-20°C, up to 20 days) and after thawing. The effect of freeze-thaw cycles varied depending on the type of the bone, but in most cases, was not measureable. When degradation did occur, the effect of freezing on the mechanical properties was smaller than the natural variation of those properties across a sample before freezing. Degradation of the mechanical properties, as measured by the RPI, was always found to be 15% or less. Subsequent freeze-thaw cycles had no effect on further degradation of the bone samples. In cases where degradation occurred, the effect from the twenty-day duration of freezing was negligible compared to the effects from phase-change. Furthermore, significant evidence was found supporting the theory that freezing degrades the organic components of the extracellular matrix.
冷冻对骨力学性能的影响
骨折带来的严重健康风险使得人们越来越需要准确诊断骨折风险。参考点压痕仪(RPI)直接测量体内的关键力学性能来评估骨的可骨折性。用RPI测量冷冻保存的骨样本可以获得丰富的信息。由于尚不清楚冷冻如何影响这些关键的机械性能,因此测量冷冻保存的样品无法指示样品的原始断裂性。虽然有关于冻结如何影响骨的各种力学性能的研究,但这是第一篇显示冻结如何影响RPI可骨折性测量的论文。牛股骨和人胫骨在冷冻前(-20°C,最多20天)和解冻后使用RPI进行测试。冻融循环的效果因骨的类型而异,但在大多数情况下,这种效果是无法测量的。当降解确实发生时,冻结对机械性能的影响小于冻结前样品中这些性能的自然变化。机械性能的退化,如RPI测量,总是被发现是15%或更少。随后的冻融循环对骨样品的进一步降解没有影响。在发生降解的情况下,与相变的影响相比,20天的冷冻时间的影响可以忽略不计。此外,还发现了支持冷冻降解细胞外基质有机成分理论的重要证据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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