Heat‐Suppressing Projection Two‐Photon Lithography Enables High‐Throughput Sub‐Micrometer Manufacturing of Biopolymer Hydrogels for Tissue Engineering

Native tissues exhibit complex, multiscale hierarchies ranging from centimeter-scale organization to sub-micrometer extracellular matrix (ECM) topographies. While two-photon polymerization (TPP) lithography provides the sub-micrometer precision essential for mimicking the ECM, traditional point-scanning TPP is constrained by prohibitively low fabrication efficiency. Although projection two-photon lithography (P-TPP) significantly enhances throughput, its application in biopolymer hydrogels is severely hindered by intensive localized heat accumulation, often resulting in material charring and compromised bioactivity. In this study, we developed a heat-suppressing P-TPP platform that overcomes these thermal limitations. By employing a low-exothermic Type II photoinitiating system, we effectively mitigate thermal damage during high-power polymerization, enabling the high-fidelity fabrication of hydrogel micro-units with sub-micrometer resolution. This technical advancement improves production throughput by 3-4 orders of magnitude compared to conventional point-scanning TPP. To bridge the gap between micro-precision and macro-scale tissue engineering, we further integrated this platform with extrusion-based printing, a process termed integrated lithography and extrusion additive production. This multiscale manufacturing approach allows for the assembly of engineered micro-units into sophisticated macroscopic hydrogel constructs that provide critical structural cues for cell alignment and functional tissue maturation. Our platform offers a scalable paradigm for the fabrication of multiscale hydrogels tailored for advanced biomedical applications.

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Publication Details

Journal
Advanced Science
Published
2026-08-24
DOI
https://doi.org/10.1002/advs.76938
Primary Topic
Nonlinear Optical Materials Studies
Type
article
Field-Weighted Citation Impact
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article

Heat‐Suppressing Projection Two‐Photon Lithography Enables High‐Throughput Sub‐Micrometer Manufacturing of Biopolymer Hydrogels for Tissue Engineering

Jiakun Li, Naitao Li, Jiebo Li, Xiangyu Xu et al.
Advanced Science
Nonlinear Optical Materials Studies
article

Heat‐Suppressing Projection Two‐Photon Lithography Enables High‐Throughput Sub‐Micrometer Manufacturing of Biopolymer Hydrogels for Tissue Engineering

Jiakun Li, Naitao Li, Jiebo Li, Xiangyu Xu, Sen Hou, Yanzhe Fu, Lizhen Wang, Qifeng Guan, Yufan Wang, Ping Li, Kai Wang, Yubo Fan, Jiebo Li, Yubo Fan
article en

Abstract

Native tissues exhibit complex, multiscale hierarchies ranging from centimeter-scale organization to sub-micrometer extracellular matrix (ECM) topographies. While two-photon polymerization (TPP) lithography provides the sub-micrometer precision essential for mimicking the ECM, traditional point-scanning TPP is constrained by prohibitively low fabrication efficiency. Although projection two-photon lithography (P-TPP) significantly enhances throughput, its application in biopolymer hydrogels is severely hindered by intensive localized heat accumulation, often resulting in material charring and compromised bioactivity. In this study, we developed a heat-suppressing P-TPP platform that overcomes these thermal limitations. By employing a low-exothermic Type II photoinitiating system, we effectively mitigate thermal damage during high-power polymerization, enabling the high-fidelity fabrication of hydrogel micro-units with sub-micrometer resolution. This technical advancement improves production throughput by 3-4 orders of magnitude compared to conventional point-scanning TPP. To bridge the gap between micro-precision and macro-scale tissue engineering, we further integrated this platform with extrusion-based printing, a process termed integrated lithography and extrusion additive production. This multiscale manufacturing approach allows for the assembly of engineered micro-units into sophisticated macroscopic hydrogel constructs that provide critical structural cues for cell alignment and functional tissue maturation. Our platform offers a scalable paradigm for the fabrication of multiscale hydrogels tailored for advanced biomedical applications.

Advanced Science
Zhejiang International Studies University (CN), Beihang University (CN), Ministry of Industry and Information Technology (CN)
National Natural Science Foundation of China, Fundamental Research Funds for the Central Universities
Openalex Percentile: Top 19%
Nonlinear Optical Materials Studies
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