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肌腱-骨界面下矿化纤维软骨和软骨下骨的局部各向异性。

Local anisotropy in mineralized fibrocartilage and subchondral bone beneath the tendon-bone interface.

机构信息

Mechanics of Biological and Bioinspired Materials Laboratory, Department of Aerospace and Mechanical Engineering, University of Liège, Quartier Polytech 1, Allée de la Découverte 9, 4000, Liège, Belgium.

Chemical Engineering Department, University of Liège, Liège, Belgium.

出版信息

Sci Rep. 2021 Aug 16;11(1):16534. doi: 10.1038/s41598-021-95917-4.

Abstract

The enthesis allows the insertion of tendon into bone thanks to several remarkable strategies. This complex and clinically relevant location often features a thin layer of fibrocartilage sandwiched between tendon and bone to cope with a highly heterogeneous mechanical environment. The main purpose of this study was to investigate whether mineralized fibrocartilage and bone close to the enthesis show distinctive three-dimensional microstructural features, possibly to enable load transfer from tendon to bone. As a model, the Achilles tendon-calcaneus bone system of adult rats was investigated with histology, backscattered electron imaging and micro-computed tomography. The microstructural porosity of bone and mineralized fibrocartilage in different locations including enthesis fibrocartilage, periosteal fibrocartilage and bone away from the enthesis was characterized. We showed that calcaneus bone presents a dedicated protrusion of low porosity where the tendon inserts. A spatially resolved analysis of the trabecular network suggests that such protrusion may promote force flow from the tendon to the plantar ligament, while partially relieving the trabecular bone from such a task. Focusing on the tuberosity, highly specific microstructural aspects were highlighted. Firstly, the interface between mineralized and unmineralized fibrocartilage showed the highest roughness at the tuberosity, possibly to increase failure resistance of a region carrying large stresses. Secondly, fibrochondrocyte lacunae inside mineralized fibrocartilage, in analogy with osteocyte lacunae in bone, had a predominant alignment at the enthesis and a rather random organization away from it. Finally, the network of subchondral channels inside the tuberosity was highly anisotropic when compared to contiguous regions. This dual anisotropy of subchondral channels and cell lacunae at the insertion may reflect the alignment of the underlying collagen network. Our findings suggest that the microstructure of fibrocartilage may be linked with the loading environment. Future studies should characterize those microstructural aspects in aged and or diseased conditions to elucidate the poorly understood role of bone and fibrocartilage in enthesis-related pathologies.

摘要

腱骨结合部(enthesis)通过多种显著策略实现肌腱向骨的插入。这个复杂且与临床密切相关的部位通常具有一层薄的纤维软骨,夹在肌腱和骨之间,以适应高度异质的机械环境。本研究的主要目的是探讨腱骨结合部附近的矿化纤维软骨和骨是否具有独特的三维微观结构特征,以实现从肌腱向骨的负荷传递。为此,我们以成年大鼠的跟腱-跟骨系统为模型,进行了组织学、背散射电子成像和微计算机断层扫描研究。研究了不同部位(包括腱骨结合部纤维软骨、骨膜纤维软骨和远离腱骨结合部的骨)的骨和矿化纤维软骨的微观结构孔隙率。我们发现,跟骨存在一个专门的低孔隙率突起,肌腱在此插入。对小梁网络的空间分辨分析表明,这种突起可能促进力从肌腱流向足底韧带,同时部分减轻小梁骨的这种作用。在关注结节时,突出了高度特异性的微观结构方面。首先,矿化和未矿化纤维软骨之间的界面在结节处具有最高的粗糙度,可能会增加承载大应力区域的抗失效能力。其次,矿化纤维软骨内的纤维软骨细胞腔,与骨内的骨细胞腔类似,在腱骨结合部呈优势排列,而在远离腱骨结合部处呈随机排列。最后,与相邻区域相比,结节内的软骨下通道网络具有高度各向异性。这种插入处软骨下通道和细胞腔的双重各向异性可能反映了下方胶原网络的排列。我们的发现表明,纤维软骨的微观结构可能与加载环境有关。未来的研究应在老年和/或患病条件下对这些微观结构特征进行表征,以阐明骨和纤维软骨在腱骨结合部相关病变中作用的认识不足。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7ca5/8367976/3525510b9996/41598_2021_95917_Fig1_HTML.jpg

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