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国际腰椎研究学会奖得主:胶原纤维滑动决定纤维环细胞力学:牛椎间盘原位共聚焦显微镜研究

ISSLS prize winner: Collagen fibril sliding governs cell mechanics in the anulus fibrosus: an in situ confocal microscopy study of bovine discs.

作者信息

Bruehlmann Sabina B, Matyas John R, Duncan Neil A

机构信息

Department of Mechanical Engineering, University of Calgary, Calgary, Alberta, Canada.

出版信息

Spine (Phila Pa 1976). 2004 Dec 1;29(23):2612-20. doi: 10.1097/01.brs.0000146465.05972.56.

Abstract

STUDY DESIGN

In situ investigation of collagen and cell mechanics in bovine caudal discs using novel techniques of confocal microscopy.

OBJECTIVE

To measure simultaneously the in situ intercellular and collagen matrix mechanics in the inner and outer anulus fibrosus of the intervertebral disc subjected to flexion.

SUMMARY OF BACKGROUND DATA

Mechanobiology studies, both in vivo and in vitro, clearly demonstrate that mechanical factors can influence the metabolic activity of disc cells, altering the expression of key extracellular matrix molecules. Essential to elucidating the mechanotransduction mechanisms is a detailed understanding of the in situ mechanical environment of disc cells in response to whole-body mechanical loads.

METHODS

Confocal microscopy was used to simultaneously track and capture in situ images of fluorescently labeled cells and matrix during an applied flexion. The position of the nuclear centroids was calculated before and after applied flexion to quantify the in situ intercellular mechanics of both lamellar and interlamellar cells. The deflection patterns of lines photobleached into the extracellular matrix were used to quantify collagen fibril sliding and collagen fibril strains in situ.

RESULTS

The extracellular matrix was observed to deflect nonuniformly due to the relative sliding of the collagen fibrils. Intercellular displacements within the lamellar layers were also nonuniform, both along a cell row and between adjacent rows. Within a cell row, the intercellular displacements were small (<1%).

CONCLUSIONS

The in situ cell mechanics of anular cells was found to be strongly influenced by collagen fibril sliding in the extracellular matrix and could not be inferred directly from applied tissue loads.

摘要

研究设计

使用共聚焦显微镜新技术对牛尾椎间盘的胶原蛋白和细胞力学进行原位研究。

目的

同时测量在屈曲状态下椎间盘纤维环内层和外层的原位细胞间及胶原基质力学。

背景数据总结

体内和体外的力学生物学研究均清楚表明,机械因素可影响椎间盘细胞的代谢活性,改变关键细胞外基质分子的表达。阐明机械转导机制的关键在于详细了解椎间盘细胞在全身机械负荷作用下的原位力学环境。

方法

在施加屈曲时,使用共聚焦显微镜同时跟踪并捕获荧光标记细胞和基质的原位图像。计算施加屈曲前后细胞核质心的位置,以量化层状细胞和层间细胞的原位细胞间力学。将光漂白到细胞外基质中的线条的偏转模式用于原位量化胶原纤维滑动和胶原纤维应变。

结果

由于胶原纤维的相对滑动,观察到细胞外基质的偏转不均匀。层状层内的细胞间位移在细胞行内以及相邻行之间也不均匀。在一个细胞行内,细胞间位移很小(<1%)。

结论

发现纤维环细胞的原位细胞力学受到细胞外基质中胶原纤维滑动的强烈影响,不能直接从施加的组织负荷推断得出。

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