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兔跟腱和股内侧副韧带附着点在负荷下的纤维变形

Fibril deformation under load of the rabbit Achilles tendon and medial collateral ligament femoral entheses.

作者信息

Sevick Johnathan L, Abusara Ziad, Andrews Stephen H, Xu Minjia, Khurshid Saad, Chatha Jansher, Hart David A, Shrive Nigel G

机构信息

McCaig Institute for Bone and Joint Health, University of Calgary, Calgary, Alberta, Canada.

Biomedical Engineering Graduate Program, University of Calgary, Calgary, Alberta, Canada.

出版信息

J Orthop Res. 2018 Sep;36(9):2506-2515. doi: 10.1002/jor.23912. Epub 2018 Apr 25.

Abstract

Microscopic visualization under load of the region connecting ligaments/tendons to bone, the enthesis, has been performed previously; however, specific investigation of individual fibril deformation may add insight to such studies. Detailed visualization of fibril deformation would inform on the mechanical strategies employed by this tissue in connecting two mechanically disparate materials. Clinically, an improved understanding of enthesis mechanics may help guide future restorative efforts for torn or injured ligaments/tendons, where the enthesis is often a point of weakness. In this study, a custom ligament/tendon enthesis loading device was designed and built, a unique method of sample preparation was devised, and second harmonic and two-photon fluorescence microscopy were used to capture the fibril-level load response of the rabbit Achilles tendon and medial collateral ligament femoral entheses. A focus was given to investigation of the mechanical problem of fibril embedment. Resultant images indicate a rapid (occurring over approximately 60 μm) change in fibril orientation at the interface of ligament/tendon and calcified fibrocartilage early in the loading regime, before becoming relatively constant. Such a change in fibril angle helps confirm the materially graded region demonstrated by others, while, in this case, providing additional insight into fibril bending. We speculate that the scale of the mechanical problem (i.e., fibril diameters being on the order of 250 nm) allows fibrils to bend over the small (relative to the imaging field of view, but large relative to fibril diameter) distances observed; thus, potentially lessening required embedment lengths. Nevertheless, this behavior merits further investigation to be confirmed. © 2018 Orthopaedic Research Society. Published by Wiley Periodicals, Inc. J Orthop Res 36:2506-2515, 2018.

摘要

以往曾对连接韧带/肌腱与骨骼的区域(即附着点)在负荷下进行微观可视化研究;然而,对单个纤维变形进行具体研究可能会为这类研究增添新的见解。纤维变形的详细可视化将有助于了解该组织在连接两种力学性质不同的材料时所采用的力学策略。在临床上,更好地理解附着点力学可能有助于指导未来对撕裂或受伤的韧带/肌腱的修复工作,因为附着点往往是一个薄弱点。在本研究中,设计并制造了一种定制的韧带/肌腱附着点加载装置,设计了一种独特的样品制备方法,并使用二次谐波和双光子荧光显微镜来捕捉兔跟腱和内侧副韧带股骨附着点的纤维水平负荷响应。重点研究了纤维嵌入的力学问题。所得图像表明,在加载过程早期,韧带/肌腱与钙化纤维软骨界面处的纤维取向会迅速(在约60μm范围内)发生变化,之后趋于相对稳定。纤维角度的这种变化有助于证实其他人所展示的材料渐变区域,同时在这种情况下,还能为纤维弯曲提供更多见解。我们推测,力学问题的尺度(即纤维直径约为250nm)使得纤维能够在观察到的小距离(相对于成像视野较小,但相对于纤维直径较大)内弯曲;因此,可能会减少所需的嵌入长度。然而,这种行为有待进一步研究以证实。©2018骨科研究协会。由威利期刊公司出版。《矫形外科学研究》36:2506 - 2515,2018年。

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