Volumetric Printing across Melt Electrowritten Scaffolds Fabricates Multi-Material Living Constructs with Tunable Architecture and Mechanics
Größbacher, Gabriel; Bartolf-Kopp, Michael; Gergely, Csaba; Bernal, Paulina Núñez; Florczak, Sammy; de Ruijter, Mylène; Rodriguez, Núria Ginés; Groll, Jürgen; Malda, Jos; Jüngst, Tomasz; Levato, Riccardo
(2023) Advanced Materials, volume 35, issue 32, pp. 1 - 18
(Article)
Abstract
Major challenges in biofabrication revolve around capturing the complex, hierarchical composition of native tissues. However, individual 3D printing techniques have limited capacity to produce composite biomaterials with multi-scale resolution. Volumetric bioprinting recently emerged as a paradigm-shift in biofabrication. This ultrafast, light-based technique sculpts cell-laden hydrogel bioresins into 3D structures in
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a layerless fashion, providing enhanced design freedom over conventional bioprinting. However, it yields prints with low mechanical stability, since soft, cell-friendly hydrogels are used. Herein, the possibility to converge volumetric bioprinting with melt electrowriting, which excels at patterning microfibers, is shown for the fabrication of tubular hydrogel-based composites with enhanced mechanical behavior. Despite including non-transparent melt electrowritten scaffolds in the volumetric printing process, high-resolution bioprinted structures are successfully achieved. Tensile, burst, and bending mechanical properties of printed tubes are tuned altering the electrowritten mesh design, resulting in complex, multi-material tubular constructs with customizable, anisotropic geometries that better mimic intricate biological tubular structures. As a proof-of-concept, engineered tubular structures are obtained by building trilayered cell-laden vessels, and features (valves, branches, fenestrations) that can be rapidly printed using this hybrid approach. This multi-technology convergence offers a new toolbox for manufacturing hierarchical and mechanically tunable multi-material living structures.
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Keywords: biofabrication, bioprinting hydrogels, melt electrowriting, volumetric additive manufacturing, Mechanics of Materials, Mechanical Engineering, Materials Science(all)
ISSN: 0935-9648
Publisher: Wiley-VCH Verlag
Note: Funding Information: G.G., M.B.K., C.G., and P.N.B. contributed equally to this work. T.J. and R.L. share correspondence. The authors would like to acknowledge Lisa Galaba, Sven Heilig, Philipp Stahlhut, Marième Gueye and Marta Foronda García for their support in the experimental activities. This project received funding from the European Research Council (ERC) under the European Union's Horizon 2020 research and innovation programme (grant agreement No. 949806, VOLUME‐BIO), and from the European's Union's Horizon 2020 research and innovation programme under grant agreement No. 964497 (ENLIGHT). R.L. and J.M. acknowledge the funding from the ReumaNederland (LLP‐12, LLP22, and 19‐1‐207 MINIJOINT). M.d.R., R.L., and J.M. acknowledge the funding from the Gravitation Program “Materials Driven Regeneration”, funded by the Netherlands Organization for Scientific Research (024.003.013). R.L. also acknowledges funding from the NWA‐Ideeëngenerator programme of the Netherlands Organization for Scientific Research (NWA.1228.192.105). M.B.K. and T.J. would like to thank the German Research Foundation (DFG, Project No. 326998133‐TRR 225 – subproject B09) for financial support. The DFG also supported the project with a “State Major Instrumentation Programme” (INST 105022/58‐1 FUGG) that enabled SEM analysis of the samples. Further, M.B.K., C.G., J.G., and T.J. thank the European Union for support on printing strategies (European Fund for Regional Development – EFRE Bayern, Bio3D‐Druck project 20‐3400‐2‐10). T.J. acknowledges the European Union for funding via the European Union's Horizon 2020 research and innovation program (BRAVE) under Grant Agreement No. 874827. Publisher Copyright: © 2023 The Authors. Advanced Materials published by Wiley-VCH GmbH.
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