Affiliation:
1. Institute of Cell Biology and Neurosciences (IZN) Buchman Institute for Molecular Life Sciences (BMLS) Goethe‐Universität Frankfurt am Main Max‐von‐Laue‐Straße 15 60438 Frankfurt am Main Germany
2. Institute for Bioengineering of Catalonia (IBEC) The Barcelona Institute of Science and Technology (BIST) Barcelona 08028 Spain
Abstract
AbstractTissue engineering holds great promise for biomedical research and healthcare, offering alternatives to animal models and enabling tissue regeneration and organ transplantation. 3D bioprinting stands out for its design flexibility and reproducibility. Here, an integrated fluorescent light sheet bioprinting and imaging system is presented that combines high printing speed (0.66 mm3/s) and resolution (9 µm) with light sheet‐based imaging. This approach employs direct laser patterning and a static light sheet for confined voxel crosslinking in photocrosslinkable materials. The developed bioprinter enables real‐time monitoring of hydrogel crosslinking using fluorescent recovery after photobleaching (FRAP) and brightfield imaging as well as in situ light sheet imaging of cells. Human fibroblasts encapsulated in a thiol‐ene click chemistry‐based hydrogel exhibited high viability (83% ± 4.34%) and functionality. Furthermore, full‐thickness skin constructs displayed characteristics of both epidermal and dermal layers and remained viable for 41 days. The integrated approach demonstrates the capabilities of light sheet bioprinting, offering high speed, resolution, and real‐time characterization. Future enhancements involving solid‐state laser scanning devices such as acousto‐optic deflectors and modulators will further enhance resolution and speed, opening new opportunities in light‐based bioprinting and advancing tissue engineering.
Funder
Horizon 2020 Framework Programme
Subject
Mechanical Engineering,Mechanics of Materials,General Materials Science
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