微流控
细胞骨架
材料科学
生物物理学
微流控芯片
膜
纳米技术
融合
细胞
肺
脂质双层融合
细胞融合
变形(气象学)
炸薯条
细胞生物学
肺泡细胞
呼吸系统
细胞膜
机械生物学
荧光显微镜
化学
生物医学工程
活体细胞成像
张力(地质)
融合蛋白
荧光寿命成像显微镜
作者
Canlin Hong,Wan He,Y F Wang,Mengying Niu,Gaizhen Kuang,Qingfei Zhang,Fangfu Ye,Yan Zu
标识
DOI:10.1002/adhm.202505664
摘要
Lung-on-a-chip models are important for studying the onset and progression of respiratory diseases. However, existing lung chips often lack the ability to precisely regulate alveolar stretch deformation and rarely apply the 3D physiological microenvironment of alveoli to respiratory virus research. Here, we present a biomimetic 3D microfluidic chip microphysiological system for alveolar cells stretch visualization and investigate the effect of mechanical stretch on viral infection. We utilize a SARS-CoV-2 pseudovirus to infect alveolar epithelial cells cultured on the lung alveolus chip. Subsequently, we subjected the cells to varying degrees of mechanical stretch through membrane pressure deformation to examine the impact of these forces on viral invasion. Our study demonstrates that mechanical stretch can attenuate the fluorescence intensity of cytoskeletal proteins and regulate cytoskeletal protein rearrangements, which reduces cell membrane tension and thus virus-membrane fusion on the microfluidic chip for type II alveolar cells. The above features and results show that this chip has an extremely wide range of applications in cellular biomechanical testing, exploration of lung disease mechanisms, and clinical disease treatment.
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