Multi‐material Volumetric Bioprinting and Plug‐and‐play Suspension Bath Biofabrication via Bioresin Molecular Weight Tuning and via Multiwavelength Alignment Optics

D Davide Ribezzi J Jan‐Philip Zegwaart (Department of Orthopaedics University Medical Center Utrecht Utrecht University Utrecht 3584 CX The Netherlands) T Thomas Van Gansbeke (Rousselot Port Arthurlaan 173 Gent 9000 Belgium) A Aitor Tejo‐Otero (Department of Clinical Sciences Faculty of Veterinary Medicine Utrecht University Utrecht 3584 CT The Netherlands) S Sammy Florczak J Joska Aerts (Department of Orthopaedics University Medical Center Utrecht Utrecht University Utrecht 3584 CX The Netherlands) P Paul Delrot (Readily3D SA EPFL Innovation Park Lausanne Switzerland) A Andreas Hierholzer (Department of Biosystems Science and Engineering ETH Zurich Basel Switzerland) M Martin Fussenegger J Jos Malda J Jos Olijve (Rousselot BV Port Arthurlaan 173 Ghent 9000 Belgium) R Riccardo Levato

Abstract

Abstract Volumetric Bioprinting (VBP), enables to rapidly build complex, cell‐laden hydrogel constructs for tissue engineering and regenerative medicine. Light‐based tomographic manufacturing enables spatial‐selective polymerization of a bioresin, resulting in higher throughput and resolution than what is achieved using traditional techniques. However, methods for multi‐material printing are needed for broad VBP adoption and applicability. Although converging VBP with extrusion bioprinting in support baths offers a novel, promising solution, further knowledge on the engineering of hydrogels as light‐responsive, volumetrically printable baths is needed. Therefore, this study investigates the tuning of gelatin macromers, in particular leveraging the effect of molecular weight and degree of modification, to overcome these challenges, creating a library of materials for VBP and Embedded extrusion Volumetric Printing (EmVP). Bioresins with tunable printability and mechanical properties are produced, and a novel subset of gelatins and GelMA exhibiting stable shear‐yielding behavior offers a new, single‐component, ready‐to‐use suspension medium for in‐bath printing, which is stable over multiple hours without needing temperature control. As a proof‐of‐concept biological application, bioprinted gels are tested with insulin‐producing pancreatic cell lines for 21 days of culture. Leveraging a multi‐color printer, complex multi‐material and multi‐cellular geometries are produced, enhancing the accessibility of volumetric printing for advanced tissue models.

Article Details

Volume / Issue Vol. 37, Issue 13
Published April 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (12)

D

Davide Ribezzi

J

Jan‐Philip Zegwaart

Department of Orthopaedics University Medical Center Utrecht Utrecht University Utrecht 3584 CX The Netherlands

T

Thomas Van Gansbeke

Rousselot Port Arthurlaan 173 Gent 9000 Belgium

A

Aitor Tejo‐Otero

Department of Clinical Sciences Faculty of Veterinary Medicine Utrecht University Utrecht 3584 CT The Netherlands

S

Sammy Florczak

J

Joska Aerts

Department of Orthopaedics University Medical Center Utrecht Utrecht University Utrecht 3584 CX The Netherlands

P

Paul Delrot

Readily3D SA EPFL Innovation Park Lausanne Switzerland

A

Andreas Hierholzer

Department of Biosystems Science and Engineering ETH Zurich Basel Switzerland

M

Martin Fussenegger

J

Jos Malda

J

Jos Olijve

Rousselot BV Port Arthurlaan 173 Ghent 9000 Belgium

R

Riccardo Levato