Tuning the Thermogelation and Rheology of Poly(2-Oxazoline)/poly(2-Oxazine)s Based Thermosensitive Hydrogels for 3D Bioprinting.

26 April 2021, Version 1
This content is a preprint and has not undergone peer review at the time of posting.

Abstract

As one kind of smart material, thermogelling polymers find applications in biofabrication, drug delivery and regenerative medicine. Here, we reported on a novel thermosensitive hydrogel which can be 3D printed using extrusion based printing. Gel strength was found around 3kPa storage modulus with pronounced shear thinning and rapid recovery after stress. Addition of clay nanoparticles (Laponite XLG) improved the rheological profile further. Human adipose derived stem cells were added to the hydrogel matrix, which remained fully viable after printing. Therefore, the presented materials adds to the available material toolbox for 3D bioprinting.

Keywords

poly(2-ethyl-2-oxazoline)
hydrogel fabrication techniques
hydrogel
bioprinting-based strategy
bioprinting
shear thinning
shape fidelity
cytocompatibililty
bioprintability
human adipose derived stem cells
hADSC
rheology
yield stress
flow point
cryogenic scanning electron microscopy
cryoSEM

Supplementary materials

Title
Description
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Title
EtOx-b-PrOzi-Gel SI ChemRxiv
Description
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