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肌腱细胞收缩诱导肌腱样组织形成卷曲。

Tenocyte contraction induces crimp formation in tendon-like tissue.

机构信息

Wellcome Trust Centre for Cell-Matrix Research, Faculty of Life Sciences, Michael Smith Building, University of Manchester, Oxford Road, Manchester M13 9PT UK.

School of Chemical Engineering and Analytical Science, University of Manchester, Oxford Road, Manchester, M13 9PL, United Kingdom.

出版信息

Biomech Model Mechanobiol. 2012 Mar;11(3-4):449-59. doi: 10.1007/s10237-011-0324-0. Epub 2011 Jul 7.

Abstract

Tendons are composed of longitudinally aligned collagen fibrils arranged in bundles with an undulating pattern, called crimp. The crimp structure is established during embryonic development and plays a vital role in the mechanical behaviour of tendon, acting as a shock-absorber during loading. However, the mechanism of crimp formation is unknown, partly because of the difficulties of studying tendon development in vivo. Here, we used a 3D cell culture system in which embryonic tendon fibroblasts synthesise a tendon-like construct comprised of collagen fibrils arranged in parallel bundles. Investigations using polarised light microscopy, scanning electron microscopy and fluorescence microscopy showed that tendon constructs contained a regular pattern of wavy collagen fibrils. Tensile testing indicated that this superstructure was a form of embryonic crimp producing a characteristic toe region in the stress-strain curves. Furthermore, contraction of tendon fibroblasts was the critical factor in the buckling of collagen fibrils during the formation of the crimp structure. Using these biological data, a finite element model was built that mimics the contraction of the tendon fibroblasts and monitors the response of the Extracellular matrix. The results show that the contraction of the fibroblasts is a sufficient mechanical impulse to build a planar wavy pattern. Furthermore, the value of crimp wavelength was determined by the mechanical properties of the collagen fibrils and inter-fibrillar matrix. Increasing fibril stiffness combined with constant matrix stiffness led to an increase in crimp wavelength. The data suggest a novel mechanism of crimp formation, and the finite element model indicates the minimum requirements to generate a crimp structure in embryonic tendon.

摘要

肌腱由纵向排列的胶原纤维组成,排列成束,具有波浪状图案,称为卷曲。卷曲结构在胚胎发育过程中形成,在肌腱的力学行为中起着至关重要的作用,在加载时充当减震器。然而,卷曲形成的机制尚不清楚,部分原因是难以在体内研究肌腱发育。在这里,我们使用了一种 3D 细胞培养系统,其中胚胎肌腱成纤维细胞合成了一种由平行排列的胶原纤维组成的肌腱样结构。偏振光显微镜、扫描电子显微镜和荧光显微镜的研究表明,肌腱结构中含有规则的波浪形胶原纤维图案。拉伸测试表明,这种超结构是一种胚胎卷曲的形式,在应力-应变曲线上产生特征性的脚趾区域。此外,肌腱成纤维细胞的收缩是胶原纤维在卷曲结构形成过程中弯曲的关键因素。使用这些生物学数据,建立了一个有限元模型,模拟了肌腱成纤维细胞的收缩,并监测了细胞外基质的反应。结果表明,成纤维细胞的收缩是构建平面波浪图案的充分机械冲击。此外,卷曲波长的值由胶原纤维和纤维间基质的机械性能决定。增加纤维刚度并保持基质刚度不变会导致卷曲波长增加。数据表明了卷曲形成的一种新机制,有限元模型表明了在胚胎肌腱中产生卷曲结构的最低要求。

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Tenocyte contraction induces crimp formation in tendon-like tissue.肌腱细胞收缩诱导肌腱样组织形成卷曲。
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