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The effects of osmotic stress on the viscoelastic and physical properties of articular chondrocytes.

机译:渗透压对关节软骨细胞粘弹性和物理性质的影响。

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摘要

The metabolic activity of chondrocytes in articular cartilage is influenced by alterations in the osmotic environment of the tissue, which occur secondary to mechanical compression. The mechanism by which osmotic stress modulates cell physiology is not fully understood and may involve changes in the physical properties of the membrane or the cytoskeleton. The goal of this study was to determine the effect of the osmotic environment on the mechanical and physical properties of chondrocytes. In isoosmotic medium, chondrocytes exhibited a spherical shape with numerous membrane ruffles. Normalized cell volume was found to be linearly related to the reciprocal of the extracellular osmolality (Boyle van't Hoff relationship) with an osmotically active intracellular water fraction of 61%. In deionized water, chondrocytes swelled monotonically until lysis at a mean apparent membrane area 234 +/- 49% of the initial area. Biomechanically, chondrocytes exhibited viscoelastic solid behavior. The instantaneous and equilibrium elastic moduli and the apparent viscosity of the cell were significantly decreased by hypoosmotic stress, but were unchanged by hyperosmotic stress. Changes in the viscoelastic properties were paralleled by the rapid dissociation and remodeling of cortical actin in response to hypoosmotic stress. These findings indicate that the physicochemical environment has a strong influence on the viscoelastic and physical properties of the chondrocyte, potentially through alterations in the actin cytoskeleton.
机译:软骨中软骨细胞的代谢活性受组织渗透环境变化的影响,这种变化是机械性压缩继发的。渗透应激调节细胞生理的机制尚不完全清楚,可能涉及膜或细胞骨架的物理性质的变化。这项研究的目的是确定渗透环境对软骨细胞机械和物理特性的影响。在等渗介质中,软骨细胞呈球形,带有许多膜褶。发现归一化的细胞体积与细胞外渗透压的倒数线性相关(Boyle van't Hoff关系),渗透活性细胞内水分数为61%。在去离子水中,软骨细胞单调膨胀,直至在平均表观膜面积的234 +/- 49%的初始面积处溶解。生物力学上,软骨细胞表现出粘弹性的固体行为。低渗胁迫可显着降低细胞的瞬时弹性模量和平衡弹性模量以及表观粘度,高渗胁迫则不会改变细胞的瞬时弹性模量和平衡弹性模量。响应低渗应激,皮质肌动蛋白的快速解离和重塑与粘弹性的变化平行。这些发现表明,理化环境可能通过肌动蛋白细胞骨架的改变而对软骨细胞的粘弹性和物理特性产生强烈影响。

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