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Human Stomach-on-a-chip with Luminal Flow and Peristaltic-like Motility

Overview
Journal Lab Chip
Specialties Biotechnology
Chemistry
Date 2018 Sep 22
PMID 30238091
Citations 46
Authors
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Abstract

Current in vitro approaches and animal models have critical limitations for modeling human gastrointestinal diseases because they may not properly represent multicellular human primary tissues. Therefore, there is a need for model platforms that recapitulate human in vivo development, physiology, and disease processes to validate new therapeutics. One of the major steps toward this goal was the generation of three-dimensional (3D) human gastric organoids (hGOs) via the directed differentiation of human pluripotent stem cells (hPSCs). The normal functions and diseases of the stomach occur in the luminal epithelium, however accessing the epithelium on the inside of organoids is challenging. We sought to develop a bioengineered platform to introduce luminal flow through hGOs to better model in vivo gastric functions. Here, we report an innovative microfluidic imaging platform housing hGOs with peristaltic luminal flow in vitro. This human stomach-on-a-chip allows robust, long-term, 3D growth of hGOs with the capacity for luminal delivery via a peristaltic pump. Organoids were cannulated and medium containing fluorescent dextran was delivered through the lumen using a peristaltic pump. This system also allowed us to rhythmically introduce stretch and contraction to the organoid, reminiscent of gastric motility. Our platform has the potential for long-term delivery of nutrients or pharmacological agents into the gastric lumen in vitro for the study of human gastric physiology, disease modeling, and drug screening, among other possibilities.

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References
1.
DAmour K, Agulnick A, Eliazer S, Kelly O, Kroon E, Baetge E . Efficient differentiation of human embryonic stem cells to definitive endoderm. Nat Biotechnol. 2005; 23(12):1534-41. DOI: 10.1038/nbt1163. View

2.
Paul S, Mytelka D, Dunwiddie C, Persinger C, Munos B, Lindborg S . How to improve R&D productivity: the pharmaceutical industry's grand challenge. Nat Rev Drug Discov. 2010; 9(3):203-14. DOI: 10.1038/nrd3078. View

3.
Spence J, Mayhew C, Rankin S, Kuhar M, Vallance J, Tolle K . Directed differentiation of human pluripotent stem cells into intestinal tissue in vitro. Nature. 2010; 470(7332):105-9. PMC: 3033971. DOI: 10.1038/nature09691. View

4.
Sung J, Yu J, Luo D, Shuler M, March J . Microscale 3-D hydrogel scaffold for biomimetic gastrointestinal (GI) tract model. Lab Chip. 2010; 11(3):389-92. DOI: 10.1039/c0lc00273a. View

5.
McCracken K, Howell J, Wells J, Spence J . Generating human intestinal tissue from pluripotent stem cells in vitro. Nat Protoc. 2011; 6(12):1920-8. PMC: 3896236. DOI: 10.1038/nprot.2011.410. View