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Acoustically detectable cellular-level lung injury induced by fluid mechanical stresses in microfluidic airway systems

机译:在微流道系统中由流体机械应力引起的可听觉检测到的细胞水平的肺损伤

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摘要

We describe a microfabricated airway system integrated with computerized air–liquid two-phase microfluidics that enables on-chip engineering of human airway epithelia and precise reproduction of physiologic or pathologic liquid plug flows found in the respiratory system. Using this device, we demonstrate cellular-level lung injury under flow conditions that cause symptoms characteristic of a wide range of pulmonary diseases. Specifically, propagation and rupture of liquid plugs that simulate surfactant-deficient reopening of closed airways lead to significant injury of small airway epithelial cells by generating deleterious fluid mechanical stresses. We also show that the explosive pressure waves produced by plug rupture enable detection of the mechanical cellular injury as crackling sounds.
机译:我们描述了一种微细的气道系统,该系统与计算机化的气液两相微流技术相集成,可对人的气道上皮进行芯片工程设计,并精确再现呼吸系统中发现的生理或病理性液体塞流。使用此设备,我们证明了在导致多种肺部疾病症状特征的流动条件下,细胞水平的肺损伤。具体而言,模拟闭合气道缺乏表面活性剂的重新开放的液塞的传播和破裂会通过产生有害的流体机械应力而导致小气道上皮细胞的严重损伤。我们还表明,由塞子破裂产生的爆炸压力波能够检测到机械的细胞损伤,如crack啪声。

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