Spatial Control of Light‐Responsive Proteins and Optogenetics Within Hydrogels via Volumetric Bioprinting

D Davide Ribezzi P Pere Català (Regenerative Medicine Center Utrecht University Medical Center Utrecht Utrecht University Utrecht The Netherlands) G Gabriel Größbacher P Paulina Nuñez Bernal (Regenerative Medicine Center Utrecht University Medical Center Utrecht Utrecht University Utrecht The Netherlands) O Olaf Nijssen (Regenerative Medicine Center Utrecht University Medical Center Utrecht Utrecht University Utrecht The Netherlands) S Sammy Florczak W Wilco Nijenhuis N Nuria Crusellas‐Villorbina (Regenerative Medicine Center Utrecht University Medical Center Utrecht Utrecht University Utrecht The Netherlands) B Bram Nijhoff (Regenerative Medicine Center Utrecht University Medical Center Utrecht Utrecht University Utrecht The Netherlands) P Paul Delrot (Readily3D SA EPFL Innovation Park Lausanne Switzerland) J Jos Malda A Andreas Hierholzer (Department of Biosystems Science and Engineering ETH Zurich Basel Switzerland) M Martin Fussenegger L Lukas C. Kapitein R Riccardo Levato

Abstract

ABSTRACT Spatiotemporal control over cell fate and behavior within bioprinted constructs remains a key challenge in tissue engineering. Optogenetics offers versatile potential for non‐invasive regulation of biological processes. Yet, its integration within large‐scale, cell‐laden bioprinted materials is still limited, especially considering the spatial constraints of existing light delivery methods. In this study, we introduce a novel approach that repurposes tomographic volumetric bioprinting to enable post‐printing stimulation of photosensitive protein‐switches and optogenetic circuits in cells deep within hydrogel constructs. By converging different bioprinting approaches, computer vision, context‐aware model generation, and synthetic biology and cell engineering, we demonstrated selective activation of a fluorescent, light‐responsive protein probe within multi‐material centimeter‐scale constructs. Moreover, leveraging a multi‐wavelength volumetric bioprinter, we further demonstrate this concept by selectively stimulating cells expressing a near‐infrared optogenetic system that triggers gene expression and the induction of pancreas‐specific transcription factors. The described methods provide platforms for remote, repeatable, and localized control of biological events in volumetric constructs, opening new possibilities for advanced tissue models, and dynamic tuning of cell‐mediated protein production in engineered living systems.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 10, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (15)

D

Davide Ribezzi

P

Pere Català

Regenerative Medicine Center Utrecht University Medical Center Utrecht Utrecht University Utrecht The Netherlands

G

Gabriel Größbacher

P

Paulina Nuñez Bernal

Regenerative Medicine Center Utrecht University Medical Center Utrecht Utrecht University Utrecht The Netherlands

O

Olaf Nijssen

Regenerative Medicine Center Utrecht University Medical Center Utrecht Utrecht University Utrecht The Netherlands

S

Sammy Florczak

W

Wilco Nijenhuis

N

Nuria Crusellas‐Villorbina

Regenerative Medicine Center Utrecht University Medical Center Utrecht Utrecht University Utrecht The Netherlands

B

Bram Nijhoff

Regenerative Medicine Center Utrecht University Medical Center Utrecht Utrecht University Utrecht The Netherlands

P

Paul Delrot

Readily3D SA EPFL Innovation Park Lausanne Switzerland

J

Jos Malda

A

Andreas Hierholzer

Department of Biosystems Science and Engineering ETH Zurich Basel Switzerland

M

Martin Fussenegger

L

Lukas C. Kapitein

R

Riccardo Levato