用于体外预测吸收研究的动态双流肠道芯片模型

IF 6.4 3区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Maria Elisabetta Federica Palamà, Maurizio Aiello, Gergő Borka, Jacopo Furci, Ilaria Parodi, Giuseppe Firpo, Silvia Scaglione
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引用次数: 0

摘要

人体肠道对消化、药物吸收和整体健康至关重要;然而,传统的体外和动物模型难以准确地复制其复杂的机制。本研究介绍了一种基于MIVO微流体装置的创新肠道芯片,旨在忠实地复制人类肠道环境。CaCo-2与HT-29细胞在动态流动条件下按不同比例共培养,类似血流。通过跨上皮电阻(TEER)测量、闭塞带-1和阿利新蓝染色评估肠组织分化。模型建立后,在肠顶端侧进行第二次动态流动,再现肠腔生态位。与静态培养21天相比,动态培养条件显著缩短了细胞成熟时间,在7-10天内获得了分化的肠层。此外,CaCo-2:HT-29共培养可以精细调节粘液厚度和屏障功能,这对于研究特定条件至关重要。此外,双根尖-底流系统的引入更接近于在体内观察到的肠道通透性特征。描述并成功验证的双流微流体肠道芯片能够将上皮层的屏障功能与CaCo-2:HT-29细胞比率交叉关联,最终为药物开发和疾病建模提供有用的预测模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A Dynamic Double-Flow Gut-On-Chip Model for Predictive Absorption Studies In Vitro

A Dynamic Double-Flow Gut-On-Chip Model for Predictive Absorption Studies In Vitro

Human gut is crucial for digestion, drug absorption, and overall health; however traditional in vitro and animal models struggle to accurately replicate its complex mechanisms. This study introduces an innovative gut-on-chip based on the MIVO millifluidic device, designed to faithfully replicate the human intestinal environment. CaCo-2 and HT-29 cells were co-cultured under different ratio under dynamic flow conditions, resembling the bloodstream. Intestinal tissue differentiation was assessed through Trans-epithelial electrical resistance (TEER) measurements, Zonula Occludens-1, and Alcian blue staining. After model establishment, a second dynamic flow was applied on the apical side recapitulating the intestinal lumen niche. The dynamic culture conditions significantly reduced cell maturation time, obtaining a differentiated intestinal layer within 7-10 days, compared to 21 days of static culture. In addition, CaCo-2:HT-29 co-cultures enables to finely tune the mucus thicknesses and barrier function, essential for studying specific conditions. Furthermore, the introduction of a double apical-basal flow system recapitulated intestinal permeability characteristics more closely resembling those observed in vivo. The Double-Flow millifluidic Gut-on-Chip described and successfully validated enables to cross-correlate the barrier function of the epithelial layer with the CaCo-2:HT-29 cells ratios, finally providing a predictive model useful for drug development and disease modelling.

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来源期刊
Advanced Materials Technologies
Advanced Materials Technologies Materials Science-General Materials Science
CiteScore
10.20
自引率
4.40%
发文量
566
期刊介绍: Advanced Materials Technologies Advanced Materials Technologies is the new home for all technology-related materials applications research, with particular focus on advanced device design, fabrication and integration, as well as new technologies based on novel materials. It bridges the gap between fundamental laboratory research and industry.
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