共焦显微镜
氧化损伤
氧化磷酸化
共焦
代谢组学
化学
细胞生物学
荧光素
生物物理学
肠粘膜
氧化应激
免疫荧光
显微镜
染色
胶粘剂
生物化学
紧密连接
上皮
荧光显微镜
体外
活体显微镜检查
细胞培养
渗透
细胞内
DNA损伤
细胞结
细胞损伤
分子生物学
肠上皮
共焦激光扫描显微镜
作者
Jiayi Yan,Jingyan Gao,Xinyi Jin,Jiacheng Cheng,Wentao Su,Chunqing Ai,Fanhua Kong,Shuang Song
出处
期刊:Lab on a Chip
[Royal Society of Chemistry]
日期:2026-01-01
卷期号:26 (4): 906-916
摘要
The study of human intestinal diseases, particularly those involving oxidative stress-induced barrier dysfunction, has attracted increasing attention. Traditional studies have relied heavily on animal models and static 2D cell cultures, and recently, intestinal organ-on-a-chip models have emerged as a promising alternative for modeling intestinal pathophysiology in a human-relevant context. In this study, a high-throughput intestinal chip model was developed using double-sided pressure-sensitive adhesive tape and commercial polycarbonate materials. The model was employed to culture the Caco-2 barrier under continuous fluid flow and cyclic mechanical strain which are crucial for mature barrier formation and function. Bright-field and dark-field microscopy showed that the cells formed a tight, continuous barrier layer within the system. Sodium fluorescein permeation experiments demonstrated good permeability, while polymerase chain reaction (PCR) experiments and laser confocal microscopy imaging further confirmed a high degree of epithelial polarization. Additionally, an oxidative damage model was constructed using hydrogen peroxide. Immunofluorescence staining and metabolomics analysis verified that the model exhibited characteristics consistent with oxidative damage in intestinal cells, indicating the successful construction of the oxidative damage model.
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