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Author Spotlight: Investigating the Effects of Compounds on Intestinal Tissue Using 3D Human Cell Line Models
Published on: September 1, 2023
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Three-dimensional intestinal tube with a crypt-like uneven inner wall fabricated using electrolysis-generated
Shota Uramoto1, Shuma Tanaka1, Shun Itai2
1School of Integrated Design Engineering, Graduate School of Science and Technology, Keio University, 25-202, 3-14-1 Hiyoshi, Kohoku-ku, Yokohama, Kanagawa 223-8522, Japan.
Lab on a Chip
|November 26, 2025
Summary
Researchers created a biomimetic 3D intestinal hydrogel tube with a crypt-like inner wall using microbubbles. This novel platform supports intestinal tissue engineering and disease modeling.
Area of Science:
- Biomaterials Science
- Tissue Engineering
- Gastroenterology
Background:
- Intestinal epithelial tissue in vivo exhibits a hierarchical structure with stem cells in crypts and differentiated cells in villi.
- This crypt-villus geometry is essential for maintaining intestinal homeostasis and function.
- Current models often fail to replicate this complex native architecture.
Purpose of the Study:
- To develop a novel 3D intestinal hydrogel tube model with biomimetic crypt-like structures.
- To investigate the potential of this model for hierarchical intestinal tissue formation.
- To establish a high-throughput platform for intestinal research and drug screening.
Main Methods:
- Fabrication of a 3D hydrogel tube using electrolysis-generated microbubbles on a wire mold.
- Creation of crypt-like cavities on the inner tube wall by controlling voltage application time.
- Culture of Caco-2 cells within the hydrogel tubes for 7 days.
- Analysis of cell morphology, polarity, and structure using immunofluorescence staining.
Main Results:
- Successfully fabricated hydrogel tubes with tunable crypt-like cavity sizes.
- Observed maintenance of crypt-like structures by cultured Caco-2 cells.
- Demonstrated intestinal epithelial cell polarity and specific cell morphology within the biomimetic structure.
- Indicated potential for generating hierarchical intestinal tissue.
Conclusions:
- The microbubble-fabricated hydrogel tube effectively mimics the 3D intestinal crypt structure.
- The model supports the development of polarized intestinal epithelial cells with native-like morphology.
- This biomimetic platform offers a promising tool for high-throughput intestinal tissue engineering and disease modeling.

