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Depth-Dependent Anisotropy of the Micromechanical Properties of the Extracellular and Pericellular Matrices of Articular Cartilage Evaluated via Atomic Force Microscopy

机译:通过原子力显微镜评估关节软骨的细胞外和围孔基质的微机械性能的深度依赖性各向异性

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摘要

The extracellular matrix (ECM) of articular cartilage is structurally and mechanically inhomogeneous and anisotropic, exhibiting variations in composition, collagen fiber architecture, and pericellular matrix (PCM) morphology among the different zones (superficial, middle, and deep). Joint loading exposes chondrocytes to a complex biomechanical environment, as the microscale mechanical environment of the chondrocyte depends on the relative properties of its PCM and local ECM. ECM anisotropy and chondrocyte deformation are influenced by the split-line direction, the preferred collagen fiber orientation parallel to the articular surface. While previous studies have demonstrated that cartilage macroscale properties vary with depth and the direction of loading relative to the split-line direction, the potential anisotropic behavior of the ECM and PCM at the microscale has yet to be examined. The goal of this study was to characterize the depth and directional dependence of the microscale biomechanical properties of porcine cartilage ECM and PCM in situ. Cartilage was cryosectioned to generate samples oriented parallel and perpendicular to the split-line direction and normal to the articular surface. Atomic force microscopy (AFM)-based stiffness mapping was utilized to measure ECM and PCM microscale elastic properties in all three directions within each zone. Distinct anisotropy in ECM elastic moduli was observed in the superficial and deep zones, while the middle zone exhibited subtle anisotropy. PCM elastic moduli exhibited zonal uniformity with depth and directional dependence when pooled across the zones. These findings provide new evidence for mechanical inhomogeneity and anisotropy at the microscale in articular cartilage.
机译:关节软骨的细胞外基质(ECM)在结构和机械上均不均一且各向异性,在不同区域(浅表层,中层和深层)之间表现出组成,胶原纤维结构和细胞周围基质(PCM)形态的变化。关节负荷使软骨细胞处于复杂的生物力学环境中,因为软骨细胞的微观机械环境取决于其PCM和局部ECM的相对特性。 ECM各向异性和软骨细胞变形受分割线方向影响,优选的胶原纤维方向平行于关节表面。尽管先前的研究表明,软骨的宏观尺度特性会随深度和载荷方向(相对于分割线方向)而变化,但在微观尺度上,ECM和PCM的潜在各向异性行为尚待研究。这项研究的目的是表征猪软骨ECM和PCM的微观尺度生物力学特性的深度和方向依赖性。将软骨冷冻切片以产生平行于和垂直于分裂线方向且垂直于关节表面的样品。基于原子力显微镜(AFM)的刚度映射用于测量每个区域内所有三个方向上的ECM和PCM微型弹性性能。在表层和深层区域,ECM弹性模量具有明显的各向异性,而中层区域则表现出细微的各向异性。 PCM弹性模量跨区域分布时,具有深度和方向依赖性的区域均匀性。这些发现为关节软骨的微观尺度上的机械不均匀性和各向异性提供了新的证据。

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