4D‐Printable Photocrosslinkable Polyurethane‐Based Inks for Tissue Scaffold and Actuator Applications

Author:

Goodarzi Hosseinabadi Hossein123ORCID,Biswas Arpan1ORCID,Bhusal Anant4,Yousefinejad Ali1,Lall Aastha1,Zimmermann Wolfram‐Hubertus25678,Miri Amir K.4910,Ionov Leonid1ORCID

Affiliation:

1. Faculty of Engineering Sciences Department of Biofabrication University of Bayreuth Ludwig Thoma Str. 36A 95447 Bayreuth Germany

2. Institute of Pharmacology and Toxicology University Medical Center Göttingen Robert‐Koch‐Str. 40 37075 Göttingen Germany

3. Institute for Organic and Biomolecular Chemistry Department of Chemistry University of Göttingen 37077 Göttingen Germany

4. Department of Mechanical Engineering Rowan University 201 Mullica Hill Rd. Glassboro NJ 08028 USA

5. German Center for Cardiovascular Research (DZHK) partner site Göttingen Germany

6. Cluster of Excellence “Multiscale Bioimaging: from Molecular Machines to Networks of Excitable Cells” (MBExC) University of Göttingen 37099 Göttingen Germany

7. German Center for Neurodegenerative Diseases (DZNE) 37099 Göttingen Germany

8. Fraunhofer Institute for Translational Medicine and Pharmacology (ITMP) Göttingen Germany

9. Department of Biomedical Engineering New Jersey Institute of Technology 323 Dr. Martin Luther King Jr. Blvd. Newark NJ 07102 USA

10. Department of Mechanical and Industrial Engineering New Jersey Institute of Technology 323 Dr. Martin Luther King Jr. Blvd Newark NJ 07102 USA

Abstract

Abstract4D printing recently emerges as an exciting evolution of conventional 3D printing, where a printed construct can quickly transform in response to a specific stimulus to switch between a temporary variable state and an original state. In this work, a photocrosslinkable polyethylene–glycol polyurethane ink is synthesized for light‐assisted 4D printing of smart materials. The molecular weight distribution of the ink monomers is tunable by adjusting the copolymerization reaction time. Digital light processing (DLP) technique is used to program a differential swelling response in the printed constructs after humidity variation. Bioactive microparticles are embedded into the ink and the improvement of biocompatibility of the printed constructs is demonstrated for tissue engineering applications. Cell studies reveal above 90% viability in 1 week and ≈50% biodegradability after 4 weeks. Self‐folding capillary scaffolds, dynamic grippers, and film actuators are made and activated in a humid environment. The approach offers a versatile platform for the fabrication of complex constructs. The ink can be used in tissue engineering and actuator applications, making the ink a promising avenue for future research.

Funder

National Institutes of Health

Deutsche Forschungsgemeinschaft

Fondation Leducq

Alexander von Humboldt-Stiftung

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

Reference70 articles.

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