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半月板生物力学特性随生长的演变:一项实验与数值研究。

Evolution of Meniscal Biomechanical Properties with Growth: An Experimental and Numerical Study.

作者信息

Ferroni Marco, Belgio Beatrice, Peretti Giuseppe M, Di Giancamillo Alessia, Boschetti Federica

机构信息

Department of Chemistry, Materials and Chemical Engineering "Giulio Natta", Politecnico di Milano, 20133 Milan, Italy.

IRCCS Istituto Ortopedico Galeazzi, 20161 Milan, Italy.

出版信息

Bioengineering (Basel). 2021 May 20;8(5):70. doi: 10.3390/bioengineering8050070.

Abstract

The menisci of the knee are complex fibro-cartilaginous tissues that play important roles in load bearing, shock absorption, joint lubrication, and stabilization. The objective of this study was to evaluate the interaction between the different meniscal tissue components (i.e., the solid matrix constituents and the fluid phase) and the mechanical response according to the developmental stage of the tissue. Menisci derived from partially and fully developed pigs were analyzed. We carried out biochemical analyses to quantify glycosaminoglycan (GAG) and DNA content according to the developmental stage. These values were related to tissue mechanical properties that were measured in vitro by performing compression and tension tests on meniscal specimens. Both compression and tension protocols consisted of multi-ramp stress-relaxation tests comprised of increasing strains followed by stress-relaxation to equilibrium. To better understand the mechanical response to different directions of mechanical stimulus and to relate it to the tissue structural composition and development, we performed numerical simulations that implemented different constitutive models (poro-elasticity, viscoelasticity, transversal isotropy, or combinations of the above) using the commercial software COMSOL Multiphysics. The numerical models also allowed us to determine several mechanical parameters that cannot be directly measured by experimental tests. The results of our investigation showed that the meniscus is a non-linear, anisotropic, non-homogeneous material: mechanical parameters increase with strain, depend on the direction of load, and vary among regions (anterior, central, and posterior). Preliminary numerical results showed the predominant role of the different tissue components depending on the mechanical stimulus. The outcomes of biochemical analyses related to mechanical properties confirmed the findings of the numerical models, suggesting a specific response of meniscal cells to the regional mechanical stimuli in the knee joint. During maturation, the increase in compressive moduli could be explained by cell differentiation from fibroblasts to metabolically active chondrocytes, as indicated by the found increase in GAG/DNA ratio. The changes of tensile mechanical response during development could be related to collagen II accumulation during growth. This study provides new information on the changes of tissue structural components during maturation and the relationship between tissue composition and mechanical response.

摘要

膝关节半月板是复杂的纤维软骨组织,在承重、减震、关节润滑和稳定方面发挥着重要作用。本研究的目的是评估不同半月板组织成分(即固体基质成分和液相)之间的相互作用以及根据组织发育阶段的力学响应。分析了来自部分发育和完全发育猪的半月板。我们进行了生化分析,以根据发育阶段量化糖胺聚糖(GAG)和DNA含量。这些值与通过对半月板标本进行压缩和拉伸试验在体外测量的组织力学性能相关。压缩和拉伸方案均包括多斜坡应力松弛试验,该试验由增加应变然后应力松弛至平衡组成。为了更好地理解对不同方向机械刺激的力学响应并将其与组织结构组成和发育相关联,我们使用商业软件COMSOL Multiphysics进行了数值模拟,该模拟采用了不同的本构模型(多孔弹性、粘弹性、横向各向同性或上述模型的组合)。数值模型还使我们能够确定一些无法通过实验测试直接测量的力学参数。我们的研究结果表明,半月板是一种非线性、各向异性、非均匀的材料:力学参数随应变增加,取决于载荷方向,并且在不同区域(前部、中部和后部)有所不同。初步数值结果表明,不同组织成分根据机械刺激发挥着主要作用。与力学性能相关的生化分析结果证实了数值模型的发现,表明半月板细胞对膝关节区域机械刺激有特定反应。在成熟过程中,压缩模量的增加可以通过细胞从成纤维细胞分化为代谢活跃的软骨细胞来解释,如所发现的GAG/DNA比值增加所示。发育过程中拉伸力学响应的变化可能与生长过程中II型胶原蛋白的积累有关。本研究提供了关于成熟过程中组织结构成分变化以及组织组成与力学响应之间关系的新信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b120/8160968/7ea1ab36ec37/bioengineering-08-00070-g001.jpg

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