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Microstructural characterization of vocal folds toward a strain-energy model of collagen remodeling.

机译:声带向胶原重塑的应变能模型的微观结构表征。

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Collagen fibrils are believed to control the immediate deformation of soft tissues under mechanical load. Most extracellular matrix proteins remain intact during frozen sectioning, which allows them to be scanned using atomic force microscopy (AFM). Collagen fibrils are distinguishable because of their periodic roughness wavelength. In the present study, the shape and organization of collagen fibrils in dissected porcine vocal folds were quantified using nonlinear laser scanning microscopy data at the micrometer scale and AFM data at the nanometer scale. Rope-shaped collagen fibrils were observed. The geometric characteristics for the fibrils were fed into a hyperelastic model to predict the biomechanical response of the tissue. The model simulates the micrometer-scale unlocking behavior of collagen bundles when extended from their unloaded configuration. Force spectroscopy using AFM was used to estimate the stiffness of collagen fibrils (1±0.5MPa). The presence of rope-shaped fibrils is postulated to change the slope of the force-deflection response near the onset of nonlinearity. The proposed model could ultimately be used to evaluate changes in elasticity of soft tissues that result from the collagen remodeling.
机译:据信胶原原纤维在机械负荷下控制软组织的立即变形。大多数细胞外基质蛋白在冷冻切片过程中保持完整,从而可以使用原子力显微镜(AFM)对其进行扫描。胶原蛋白原纤维由于其周期性的粗糙波长而可以区分。在本研究中,使用微米级的非线性激光扫描显微镜数据和纳米级的AFM数据对解剖的猪声带中胶原纤维的形状和组织进行定量。观察到绳状胶原原纤维。将原纤维的几何特征输入到超弹性模型中,以预测组织的生物力学响应。该模型模拟了从未加载状态扩展的胶原束的微米级解锁行为。使用AFM的力谱法用于估计胶原原纤维的刚度(1±0.5MPa)。假定存在绳状原纤维以在非线性开始附近改变力-偏转响应的斜率。所提出的模型最终可用于评估由胶原蛋白重塑引起的软组织弹性的变化。

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