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Development of a Self-Oscillating Mechanical Model to Investigate the Biological Response of Human Vocal Fold Fibroblasts to Phono-Mimetic Stimulation

机译:开发自振荡机械模型,以研究人声折叠成纤维细胞对发夹模拟刺激的生物反应

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The human vocal folds are subjected to complex dynamic biomechanical stimulation during phonation. The aim of the present study was to develop and evaluate an airflow-induced self-oscillating mechanical model, i.e., a bioreactor, which mimics the geometry and the mechanical microenvironment of the human vocal folds. The bioreactor consisted of two composite synthetic vocal fold replicas loaded into a custom-built airflow supplied tube. A cell-scaffold mixture was injected into cavities within the replicas. The folds were phonated using a variable speed centrifugal blower for two hours a day over a period of seven days. The static and dynamic subglottal pressures and the dynamic supraglottal pressure were monitored. A similar bioreactor without mechanical excitation was used as positive control. The cell-scaffold mixture was harvested for cell viability and collagen type I immunohistochemistry tests seven days after injection. The flow-induced self-oscillations of the vocal fold replicas were shown to produce mechanical excitations that are typical of those in the human vocal fold lamina propria during phonation. The results confirmed that human vocal fold fibroblasts survived inside the present bioreactor, and maintained cellular functions of protein production.
机译:在发声过程中,人声折叠经受复杂的动态生物力学刺激。本研究的目的是开发和评估气流诱导的自振动机械模型,即生物反应器,其模仿人声折叠的几何形状和机械微环境。生物反应器由装载到定制气流供应管中的两个复合合成声带复制品。将细胞支架混合物注入复制内的空腔中。使用可变速度离心鼓风机在七天的时间内每天使用变速离心鼓风机进行折叠。监测静态和动态的分泌压力和动态超级压力。没有机械激发的类似生物反应器被用作阳性对照。收获细胞 - 支架混合物以进行细胞活力和胶原蛋白I型免疫组织化学测试7天后。显示了声音折叠复制品的流动诱导的自振荡,从而产生机械激发,这些机械激发是人声折叠椎板在作出期间的典型。结果证实,人声折叠成纤维细胞在本发明的生物反应器内存下来,并保持蛋白质产生的细胞功能。

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