A Microfluidic Device with 3-D Hydrogel Villi Scaffold to Simulate Intestinal Absorption

被引:43
|
作者
Kim, Si Hyeon [1 ]
Lee, Jung Woo [1 ]
Choi, Inwook [2 ]
Kim, Young-Chan [2 ]
Lee, Jong Bum [3 ]
Sung, Jong Hwan [1 ]
机构
[1] Hongik Univ, Seoul 121791, South Korea
[2] Korea Food Res Inst, Songnam 436746, South Korea
[3] Univ Seoul, Seoul, South Korea
关键词
Gastrointestinal Absorption; Microfluidic; 3-D Hydrogel Scaffold; DRUG ABSORPTION; CACO-2; PERMEABILITY; DELIVERY; MODEL; NANOPARTICLES; PAMPA; FLOW;
D O I
10.1166/jnn.2013.8088
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The absorption of drugs via oral route is a subject of a great interest in drug development process. The current in vitro method for measuring the kinetics of drug absorption relies on 2-D monolayer culture of Caco-2 cells on a porous membrane, but physiologically unrealistic environment provided by this method often results in inaccurate drug absorption kinetics. Here we report a novel microfluidic system which better mimics the physiological environment of the human small intestine. Three dimensional geometries of villi of the small intestine were reproduced via novel hydrogel microfabrication technique, and the fluid flow in the apical and basolateral sides of intestinal tract was reproduced with a two-layer microfluidic device. A wide range of flow rates was achieved by using gravity-induced flow, potentially facilitating easier high-throughput implementation. The kinetics of diffusion process through the 3-D villi scaffold in the microfluidic device was measured and mathematically modeled, When combined with intestinal cell culture model, this novel 3-D microfluidic system can serve as an in vitro platform that better mimics the in vivo environment.
引用
收藏
页码:7220 / 7228
页数:9
相关论文
共 50 条
  • [21] A 3-D microfluidic combinatorial cell array
    Liu, Mike C.
    Tai, Yu-Chong
    BIOMEDICAL MICRODEVICES, 2011, 13 (01) : 191 - 201
  • [22] Carboxy-Methyl-Cellulose (CMC) Hydrogel-Filled 3-D Scaffold: Preliminary Study through a 3-D Antiproliferative Activity of Centella asiatica Extract
    Aizad, Syazwan
    Yahaya, Badrul Hisham
    Zubairi, Saiful Irwan
    2015 UKM FST POSTGRADUATE COLLOQUIUM, 2015, 1678
  • [23] 3-D Stacked Tier-Specific Microfluidic Cooling for Heterogeneous 3-D ICs
    Zhang, Yue
    Zheng, Li
    Bakir, Muhannad S.
    IEEE TRANSACTIONS ON COMPONENTS PACKAGING AND MANUFACTURING TECHNOLOGY, 2013, 3 (11): : 1811 - 1819
  • [24] 3D Modeling of Lung Adenocarcinoma With a Hydrogel Scaffold
    del Bufalo, Francesca
    Hoyos, Valentina
    Yagyu, Shigeki
    Caruana, Ignazio
    Brenner, Malcolm
    MOLECULAR THERAPY, 2015, 23 : S169 - S169
  • [25] Microfluidic Device to Manipulate 3D Human Epithelial Cell-Derived Intestinal Organoids
    Matsumoto, Miki
    Morimoto, Yuya
    Sato, Toshiro
    Takeuchi, Shoji
    MICROMACHINES, 2022, 13 (12)
  • [26] A 3-D MICROFLUIDIC COMBINATORIAL CELL CULTURE ARRAY
    Liu, M. C.
    Tai, Y. C.
    IEEE 22ND INTERNATIONAL CONFERENCE ON MICRO ELECTRO MECHANICAL SYSTEMS (MEMS 2009), 2009, : 427 - 430
  • [27] Are 3-D models necessary to simulate packed bed reactors? analysis and 3-D simulations of adiabatic and cooled reactors
    Nekhamkina, Olga
    Sheintuch, Moshe
    AICHE JOURNAL, 2012, 58 (11) : 3494 - 3503
  • [28] Research on 3-D Bio-printing Molding Technology of Tissue Engineering Scaffold by Nanocellulose/gelatin Hydrogel Composite
    Feng, Chen
    Zhou, Ji-ping
    Xu, Xiao-dong
    Jiang, Ya-ni
    Shi, Hong-can
    Zhao, Guo-qi
    BIORESOURCES, 2019, 14 (04) : 9244 - 9257
  • [29] Use of l-pNIPAM hydrogel as a 3D-scaffold for intestinal crypts and stem cell tissue engineering
    Dosh, Rasha H.
    Jordan-Mahy, Nicola
    Sammon, Christopher
    Le Maitre, Christine L.
    BIOMATERIALS SCIENCE, 2019, 7 (10) : 4310 - 4324
  • [30] Simulation and 3-D visualization of the intestinal crypt
    Gumbel, M
    Werner, O
    Zajicek, G
    Meinzer, HP
    SIMULATION: PAST, PRESENT AND FUTURE, 1998, : 310 - 312