Embedded Multimaterial Extrusion Bioprinting

Journal Article (2018)
Author(s)

Marco Rocca (Harvard University)

Alessio Fragasso (TU Delft - BN/Cees Dekker Lab, Harvard University)

Wanjun Liu (Donghua University, Harvard University)

Marcel A. Heinrich (Harvard University, University of Twente)

Yu Shrike Zhang (Harvard University)

Research Group
BN/Cees Dekker Lab
DOI related publication
https://doi.org/10.1177/2472630317742071 Final published version
More Info
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Publication Year
2018
Language
English
Research Group
BN/Cees Dekker Lab
Journal title
SLAS Technology
Pages (from-to)
154-163
Downloads counter
209

Abstract

Embedded extrusion bioprinting allows for the generation of complex structures that otherwise cannot be achieved with conventional layer-by-layer deposition from the bottom, by overcoming the limits imposed by gravitational force. By taking advantage of a hydrogel bath, serving as a sacrificial printing environment, it is feasible to extrude a bioink in freeform until the entire structure is deposited and crosslinked. The bioprinted structure can be subsequently released from the supporting hydrogel and used for further applications. Combining this advanced three-dimensional (3D) bioprinting technique with a multimaterial extrusion printhead setup enables the fabrication of complex volumetric structures built from multiple bioinks. The work described in this paper focuses on the optimization of the experimental setup and proposes a workflow to automate the bioprinting process, resulting in a fast and efficient conversion of a virtual 3D model into a physical, extruded structure in freeform using the multimaterial embedded bioprinting system. It is anticipated that further development of this technology will likely lead to widespread applications in areas such as tissue engineering, pharmaceutical testing, and organs-on-chips.