Hydrogel Viscoelasticity: Tissue Mechanics, Modulation Strategies, and Bioprinting

ABSTRACT Three‐dimensional (3D) bioprinting enables the fabrication of complex tissue constructs with precise spatial organization of cells and biomaterials. Hydrogels are widely used as bioinks due to their biocompatibility, high water content, porosity, and tunable mechanical properties. However, many conventional, permanently crosslinked hydrogels exhibit limited or poorly tunable time‐dependent mechanical responses compared with native tissues, making it difficult to simultaneously satisfy printability, post‐printing stability, and biological requirements. This review examines the viscoelastic mechanisms of natural tissues and key viscoelastic parameters across major tissue types. It also summarizes recent strategies for engineering hydrogel viscoelasticity through polymer composition, crosslinking networks, and microstructure design. Furthermore, we discuss how these strategies meet the requirements of force‐driven, light‐driven, and volumetric bioprinting. These developments provide a practical framework for designing next‐generation viscoelastic bioinks and advancing functional tissue engineering.

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Publication Details

Journal
Small Methods
Published
2026-09-24
DOI
https://doi.org/10.1002/smtd.71056
Primary Topic
3D Printing in Biomedical Research
Type
article
Field-Weighted Citation Impact
0.00
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article

Hydrogel Viscoelasticity: Tissue Mechanics, Modulation Strategies, and Bioprinting

Jie Gao, Mei Lan, Zhiyuang Zheng, Mingzhai Sun et al.
Small Methods
3D Printing in Biomedical Research
article

Hydrogel Viscoelasticity: Tissue Mechanics, Modulation Strategies, and Bioprinting

Jie Gao, Mei Lan, Zhiyuang Zheng, Mingzhai Sun, Ronald X. Xu, Min Ye, Shuwei Shen, Shilu Zhu, Yingji Meng, Yang Zhang
article en

Abstract

ABSTRACT Three‐dimensional (3D) bioprinting enables the fabrication of complex tissue constructs with precise spatial organization of cells and biomaterials. Hydrogels are widely used as bioinks due to their biocompatibility, high water content, porosity, and tunable mechanical properties. However, many conventional, permanently crosslinked hydrogels exhibit limited or poorly tunable time‐dependent mechanical responses compared with native tissues, making it difficult to simultaneously satisfy printability, post‐printing stability, and biological requirements. This review examines the viscoelastic mechanisms of natural tissues and key viscoelastic parameters across major tissue types. It also summarizes recent strategies for engineering hydrogel viscoelasticity through polymer composition, crosslinking networks, and microstructure design. Furthermore, we discuss how these strategies meet the requirements of force‐driven, light‐driven, and volumetric bioprinting. These developments provide a practical framework for designing next‐generation viscoelastic bioinks and advancing functional tissue engineering.

Small Methods
University of Science and Technology of China (CN), Suzhou University of Science and Technology (CN)
Openalex Percentile: Top 21%
3D Printing in Biomedical Research
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Hydrogel Viscoelasticity: Tissue Mechanics, Modulation Strategies, and Bioprinting — Jie Gao, Mei Lan, et al. · Small Methods (2026) | TGRS Research Map | TGRS