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3D printing of sacrificial thioester elastomers using digital light processing for templating 3D organoid structures in soft biomatrices

Authors :
Robert R. McLeod
Christopher N. Bowman
John E. Hergert
F. Max Yavitt
Benjamin J Carberry
Kelly F. Speckl
Kristi S. Anseth
Juan J. Hernandez
Source :
Biofabrication
Publication Year :
2021
Publisher :
IOP Publishing, 2021.

Abstract

Biofabrication allows for the templating of structural features in materials on cellularly-relevant size scales, enabling the generation of tissue-like structures with controlled form and function. This is particularly relevant for growing organoids, where the application of biochemical and biomechanical stimuli can be used to guide the assembly and differentiation of stem cells and form architectures similar to the parent tissue or organ. Recently, ablative laser-scanning techniques was used to create 3D overhang features in collagen hydrogels at size scales of 10–100 µm and supported the crypt-villus architecture in intestinal organoids. As a complementary method, providing advantages for high-throughput patterning, we printed thioester functionalized poly(ethylene glycol) (PEG) elastomers using digital light processing (DLP) and created sacrificial, 3D shapes that could be molded into soft (G′ < 1000 Pa) hydrogel substrates. Specifically, three-arm 1.3 kDa PEG thiol and three-arm 1.6 kDa PEG norbornene, containing internal thioester groups, were photopolymerized to yield degradable elastomers. When incubated in a solution of 300 mM 2-mercaptoethanol (pH 9.0), 1 mm thick 10 mm diameter elastomer discs degraded in µm, resolutions of 22 ± 5 µm, and overhang structures as small as 50 µm, were printed on the order of minutes. These sacrificial thioester molds with physiologically relevant features were cast-molded into Matrigel and subsequently degraded to create patterned void spaces with high fidelity. Intestinal stem cells (ISCs) cultured on the patterned Matrigel matrices formed confluent monolayers that conformed to the underlying pattern. DLP printed sacrificial thioester elastomer constructs provide a robust and rapid method to fabricate arrays of 3D organoid-sized features in soft tissue culture substrates and should enable investigations into the effect of epithelial geometry and spacing on the growth and differentiation of ISCs.

Details

ISSN :
17585090 and 17585082
Volume :
13
Database :
OpenAIRE
Journal :
Biofabrication
Accession number :
edsair.doi.dedup.....9c0989785a5e1a04329f67797695859e
Full Text :
https://doi.org/10.1088/1758-5090/ac1c98