A Microgel–Hydrogel Hybrid for Functional Compensation and Mechanical Stability in 3D Printed Cell‐Dense Vascularized Liver Tissue

X Xinhuan Wang (Human Organ Physiopathology Emulation System Institute of Zoology Chinese Academy of Sciences Beijing P. R. China) X Xin Liu K Kai Li W Wenli Liu Y Yifan Wang S Shen Ji Z Zili Gao J Jilong Ren T Tang Hai (Human Organ Physiopathology Emulation System State Key Laboratory of Organ Regeneration and Reconstruction Institute of Zoology Chinese Academy of Sciences Beijing 100101 P. R. China) L Lijian Hui (State Key Laboratory of Cell Biology CAS Center for Excellence in Molecular Cell Science Shanghai Institute of Biochemistry and Cell Biology Chinese Academy of Sciences University of Chinese Academy of Sciences Shanghai 200031 P. R. China) X Xiongfei Zheng (University of Chinese Academy of Sciences Beijing 100049 P. R. China) Q Qi Gu

Abstract

Abstract 3D bioprinting of liver tissue with high cell density (HCD) shows great promise for restoring function in cases of acute liver failure, where a substantial number of functional cells are required to perform essential physiological tasks. Direct vascular anastomosis is critical for the successful implantation of these bioprinted vascularized tissues into the host vasculature, allowing for rapid functional compensation and addressing various acute conditions. However, conventional hydrogels used to encapsulate high‐density cells often lack the mechanical properties needed to withstand the shear forces of physiological blood flow, often resulting in implantation failure. In this study, a heterogeneous microgel–hydrogel hybrid is developed to carry HCD hepatocytes and support the embedded bioprinting of hierarchical vascular structures. By optimizing the ratio of microgel to biomacromolecule, the covalently crosslinked network offers mechanical integrity and enables direct vascular anastomosis, ensuring efficient nutrient and oxygen exchange. The bioprinted thick, vascularized constructs, containing HCD hepatocytes, are successfully implanted in rats after 85% hepatectomy, leading to swift functional recovery and prolonged survival. This study presents a strategy to enhance regenerative therapy outcomes through advanced bioprinting and vascular integration techniques.

Article Details

Volume / Issue Vol. 37, Issue 28
Published July 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (12)

X

Xinhuan Wang

Human Organ Physiopathology Emulation System Institute of Zoology Chinese Academy of Sciences Beijing P. R. China

X

Xin Liu

K

Kai Li

W

Wenli Liu

Y

Yifan Wang

S

Shen Ji

Z

Zili Gao

J

Jilong Ren

T

Tang Hai

Human Organ Physiopathology Emulation System State Key Laboratory of Organ Regeneration and Reconstruction Institute of Zoology Chinese Academy of Sciences Beijing 100101 P. R. China

L

Lijian Hui

State Key Laboratory of Cell Biology CAS Center for Excellence in Molecular Cell Science Shanghai Institute of Biochemistry and Cell Biology Chinese Academy of Sciences University of Chinese Academy of Sciences Shanghai 200031 P. R. China

X

Xiongfei Zheng

University of Chinese Academy of Sciences Beijing 100049 P. R. China

Q

Qi Gu