Multi‐scale Engineered Vasculature and Hierarchical Porosity via Volumetric Bioprinting‐Guided Photopolymerization‐Induced Phase Separation

O Oksana Y. Dudaryeva (Department of Orthopaedics University Medical Center Utrecht Utrecht University Utrecht 3584 CX The Netherlands) M Maj‐Britt Buchholz (Department of Orthopaedics University Medical Center Utrecht Utrecht University Utrecht 3584 CX The Netherlands) G Gabriel Größbacher S Sofia Amaral (South Asia Gender Innovation Lab, World Bank ,) S Sammy Florczak C Camille Bonhomme (Department of Clinical Science Faculty of Veterinary Medicine Utrecht University Utrecht 3584CT The Netherlands) A Alvaro Rojo Ferrer (Department of Orthopaedics University Medical Center Utrecht Utrecht University Utrecht 3584 CX The Netherlands) M Mark W. Tibbitt R Riccardo Levato

Abstract

Abstract Vascularization remains a major challenge in hydrogel‐based engineered tissues due to the inherent nano‐scale porosity of common synthetic and natural biomaterials. Critically, the confinement imposed by nanoscale networks inhibits blood vessels outgrowth, required for oxygen and nutrient delivery. Despite advancements in the biofabrication of small channels (0.1–1 mm), achieving vascularization (with capillaries down to 10 µm) throughout cm‐scale bioprinted constructs remains a critical bottleneck. Herein, phase separating is integrated, cell–interactive gelatin–norbornene hydrogels with volumetric bioprinting to generate architecturally defined centimeter‐scale constructs with 0.1–1mm scale printed channels and interpenetrating micron‐scale porosity. This novel approach produced freeform construct designs with light‐controllable micron‐scale and hierarchical porosity. Importantly, this porosity enabled endothelial cell infiltration and microvessel outgrowth deep into the engineered tissue. Vascular structures formed in the pore spaces with feature sizes on the scale of capillaries (<10 µm), crucial to provide oxygen and nutrients to all regions of the hydrogel. The networks remained stable for over 14 days, outperforming classical nanoporous biomaterials. Vascular networks are perfusable in this custom‐made bioreactor system and exhibited extended vessel outgrowth under perfused culture conditions. These complex hydrogel‐based constructs with engineered multi‐scale vascular networks have potential for generating actively perfusable advanced tissue models.

Article Details

Volume / Issue Vol. 38, Issue 9
Published February 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (9)

O

Oksana Y. Dudaryeva

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

M

Maj‐Britt Buchholz

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

G

Gabriel Größbacher

S

Sofia Amaral

South Asia Gender Innovation Lab, World Bank ,

S

Sammy Florczak

C

Camille Bonhomme

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

A

Alvaro Rojo Ferrer

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

M

Mark W. Tibbitt

R

Riccardo Levato