Issue 16, 2023

Development of double network polyurethane–chitosan composite bioinks for soft neural tissue engineering

Abstract

Three-dimensional (3D) bioprinting is an emerging manufacturing technology to print materials with cells for tissue engineering applications. In this study, we prepared novel ternary soft segment-based biodegradable polyurethane (tPU) using waterborne processes. The ternary soft segment included poly(ε-caprolactone) (PCL), polylactide, and poly(3-hydroxybutyrate) (PHB). tPU2 with a soft segment of PCL, poly(D,L-lactide), and PHB in a molar ratio of 0.7 : 0.2 : 0.1 demonstrated lower stiffness (∼2.3 kPa) and a greater tan δ value (∼0.64) and maintained good vitality (91.3%) of neural stem cells (NSCs) among various tPUs. The bioprinted tPU2 constructs facilitated cell proliferation (∼200% in 7 days) and neural differentiation of NSCs. Meanwhile, tPU2 formed double network composite hydrogels with gelatin or agarose, and the composite hydrogels showed good biocompatibility and achieved high-resolution (∼80 μm nozzle) bioprinting. In addition, a new series of double network polyurethane–chitosan composite (PUC) hydrogels were developed by combining tPU2 with a self-healing chitosan hydrogel. The PUC hydrogel demonstrated self-healing properties and bioprintability without the need for a post-crosslinking process. The bioprinted PUC composite hydrogel promoted cell proliferation (∼300% in 7 days) and neural differentiation of NSCs better than the tPU2 bioink. This study revealed new formulae of a polyurethane bioink and a polyurethane–chitosan composite bioink for 3D bioprinting and tissue engineering applications.

Graphical abstract: Development of double network polyurethane–chitosan composite bioinks for soft neural tissue engineering

Supplementary files

Article information

Article type
Paper
Submitted
19 Jan 2023
Accepted
07 Mar 2023
First published
08 Mar 2023

J. Mater. Chem. B, 2023,11, 3592-3606

Development of double network polyurethane–chitosan composite bioinks for soft neural tissue engineering

K. Cheng, Y. Sun and S. Hsu, J. Mater. Chem. B, 2023, 11, 3592 DOI: 10.1039/D3TB00120B

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