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通过微压痕表征小鼠跟腱附着点的力学性能。卸载及随后再加载的影响。

Characterization of the mechanical properties of the mouse Achilles tendon enthesis by microindentation. Effects of unloading and subsequent reloading.

作者信息

Camy Claire, Grünewald Tilman, Lamy Edouard, Roseren Flavy, Caumes Mathieu, Fovet Théo, Brioche Thomas, Genovesio Cecile, Chopard Angèle, Pithioux Martine, Roffino Sandrine

机构信息

Aix Marseille Univ, CNRS, ISM, 13009 Marseille, France.

Aix Marseille Univ, CNRS, Centrale Marseille, Institut Fresnel, Marseille, France.

出版信息

Bone Rep. 2024 Jan 4;20:101734. doi: 10.1016/j.bonr.2024.101734. eCollection 2024 Mar.

Abstract

The fibrocartilaginous tendon enthesis, i.e. the site where a tendon is attached to bone through a fibrocartilaginous tissue, is considered as a functionally graded interface. However, at local scale, a very limited number of studies have characterized micromechanical properties of this transitional tissue. The first goal of this work was to characterize the micromechanical properties of the mineralized part of the healthy Achilles tendon enthesis (ATE) through microindentation testing and to assess the degree of mineralization and of carbonation of mineral crystals by Raman spectroscopy. Since little is known about enthesis biological plasticity, our second objective was to examine the effects of unloading and reloading, using a mouse hindlimb-unloading model, on both the micromechanical properties and the mineral phase of the ATE. Elastic modulus, hardness, degree of mineralization, and degree of carbonation were assessed after 14 days of hindlimb suspension and again after a subsequent 6 days of reloading. The elastic modulus gradually increased along the mineralized part of the ATE from the tidemark to the subchondral bone, with the same trend being found for hardness. Whereas the degree of carbonation did not differ according to zone of measurement, the degree of mineralization increased by >70 % from tidemark to subchondral bone. Thus, the gradient in micromechanical properties is in part explained by a mineralization gradient. A 14-day unloading period did not appear to affect the gradient of micromechanical properties of the ATE, nor the degree of mineralization or carbonation. However, contrary to a short period of unloading, early return to normal mechanical load reduced the micromechanical properties gradient, regardless of carbonate-to-phosphate ratios, likely due to the more homogeneous degree of mineralization. These findings provide valuable data not only for tissue bioengineering, but also for musculoskeletal clinical studies and microgravity studies focusing on long-term space travel by astronauts.

摘要

纤维软骨性肌腱附着点,即肌腱通过纤维软骨组织附着于骨骼的部位,被视为功能梯度界面。然而,在局部尺度上,仅有极少数研究对这种过渡组织的微观力学性能进行了表征。本研究的首要目标是通过微压痕测试来表征健康跟腱附着点(ATE)矿化部分的微观力学性能,并利用拉曼光谱法评估矿物晶体的矿化程度和碳酸化程度。由于对附着点的生物可塑性了解甚少,我们的第二个目标是使用小鼠后肢卸载模型,研究卸载和再加载对ATE的微观力学性能和矿物相的影响。在进行14天的后肢悬吊后以及随后再加载6天后,分别评估弹性模量、硬度、矿化程度和碳酸化程度。弹性模量沿着ATE的矿化部分从潮线到软骨下骨逐渐增加,硬度也呈现相同趋势。虽然碳酸化程度在不同测量区域并无差异,但矿化程度从潮线到软骨下骨增加了70%以上。因此,微观力学性能的梯度部分是由矿化梯度所解释的。14天的卸载期似乎并未影响ATE微观力学性能的梯度,也未影响矿化程度或碳酸化程度。然而,与短期卸载相反,早期恢复正常机械负荷会降低微观力学性能梯度,无论碳酸盐与磷酸盐的比例如何,这可能是由于矿化程度更加均匀所致。这些发现不仅为组织生物工程提供了有价值的数据,也为肌肉骨骼临床研究以及关注宇航员长期太空旅行的微重力研究提供了有价值的数据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/17fc/10825371/44b7fefeb6e0/gr1.jpg

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