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Study Effects of Drug Treatment and Physiological Physical Stimulation on Surfactant Protein Expression of Lung Epithelial Cells Using a Biomimetic Microfluidic Cell Culture Device

机译:用仿生微流细胞培养装置研究药物处理和生理物理刺激对肺上皮细胞表面活性蛋白表达的影响

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摘要

This paper reports a biomimetic microfluidic device capable of reconstituting physiological physical microenvironments in lungs during fetal development for cell culture. The device integrates controllability of both hydrostatic pressure and cyclic substrate deformation within a single chip to better mimic the in vivo microenvironments. For demonstration, the effects of drug treatment and physical stimulations on surfactant protein C (SPC) expression of lung epithelial cells (A549) are studied using the device. The experimental results confirm the device’s capability of mimicking in vivo microenvironments with multiple physical stimulations for cell culture applications. Furthermore, the results indicate the critical roles of physical stimulations in regulating cellular behaviors. With the demonstrated functionalities and performance, the device is expected to provide a powerful tool for further lung development studies that can be translated to clinical observation in a more straightforward manner. Consequently, the device is promising for construction of more in vitro physiological microenvironments integrating multiple physical stimulations to better study organ development and its functions.
机译:本文报道了一种仿生微流控设备,能够在胎儿发育期间重建肺中的生理物理微环境以进行细胞培养。该设备在单个芯片中集成了流体静压和循环基质变形的可控性,以更好地模拟体内微环境。为了证明这一点,使用该装置研究了药物治疗和物理刺激对肺上皮细胞(A549)表面活性蛋白C(SPC)表达的影响。实验结果证实了该设备具有多种物理刺激,可以模仿体内微环境,适用于细胞培养应用。此外,结果表明物理刺激在调节细胞行为中的关键作用。凭借已证明的功能和性能,该设备有望为进一步的肺发育研究提供强大的工具,可以更直接的方式转化为临床观察。因此,该设备有望用于构建更多的体外生理微环境,将多种物理刺激整合在一起,以更好地研究器官发育及其功能。

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