3D Printing of Extracellular Matrix‐Based Multicomponent, All‐Natural, Highly Elastic, and Functional Materials toward Vascular Tissue Engineering

Author:

Isik Melis1,Karakaya Ece1,Arslan Tugba Sezgin1,Atila Deniz23,Erdogan Yasar Kemal45,Arslan Yavuz Emre6,Eskizengin Hakan7,Eylem Cemil Can8,Nemutlu Emirhan89,Ercan Batur410,D'Este Matteo11,Okesola Babatunde O.12ORCID,Derkus Burak1ORCID

Affiliation:

1. Stem Cell Research Lab Department of Chemistry Faculty of Science Ankara University Ankara 06560 Turkey

2. Department of Engineering Sciences Middle East Technical University Ankara 06800 Turkey

3. International Centre for Research on Innovative Bio‐based Materials (ICRI‐BioM) Lodz University of Technology Lodz 90924 Poland

4. Biomedical Engineering Program Middle East Technical University Ankara 06800 Turkey

5. Department of Biomedical Engineering Isparta University of Applied Science Isparta 32260 Turkey

6. Regenerative Biomaterials Laboratory, Department of Bioengineering Faculty of Engineering Canakkale Onsekiz Mart University Canakkale 17100 Turkey

7. Department of Biology Faculty of Science Ankara University Ankara 06560 Turkey

8. Analytical Chemistry Division Faculty of Pharmacy Hacettepe University Ankara 06230 Turkey

9. Bioanalytic and Omics Laboratory Faculty of Pharmacy Hacettepe University Ankara 06100 Turkey

10. Department of Metallurgical and Materials Engineering Middle East Technical University Ankara 06800 Turkey

11. AO Research Institute Davos Clavadelerstrasse 8 Davos Platz 7270 Switzerland

12. School of Life Sciences, Faculty of Medicine and Health Sciences University of Nottingham University Park Nottingham NG7 2UH UK

Abstract

Abstract3D printing offers an exciting opportunity to fabricate biological constructs with specific geometries, clinically relevant sizes, and functions for biomedical applications. However, successful application of 3D printing is limited by the narrow range of printable and bio‐instructive materials. Multicomponent hydrogel bioinks present unique opportunities to create bio‐instructive materials able to display high structural fidelity and fulfill the mechanical and functional requirements for in situ tissue engineering. Herein, 3D printable and perfusable multicomponent hydrogel constructs with high elasticity, self‐recovery properties, excellent hydrodynamic performance, and improved bioactivity are reported. The materials' design strategy integrates fast gelation kinetics of sodium alginate (Alg), in situ crosslinking of tyramine‐modified hyaluronic acid (HAT), and temperature‐dependent self‐assembly and biological functions of decellularized aorta (dAECM). Using extrusion‐based printing approach, the capability to print the multicomponent hydrogel bioinks with high precision into a well‐defined vascular constructs able to withstand flow and repetitive cyclic compressive loading, is demonstrated. Both in vitro and pre‐clinical models are used to show the pro‐angiogenic and anti‐inflammatory properties of the multicomponent vascular constructs. This study presents a strategy to create new bioink whose functional properties are greater than the sum of their components and with potential applications in vascular tissue engineering and regenerative medicine.

Funder

Ankara Universitesi

Publisher

Wiley

Subject

Pharmaceutical Science,Biomedical Engineering,Biomaterials

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