Hydrogels are promising materials for medical devices interfacing with neural tissues due to their similar mechanical properties. Traditional hydrogel-based bio-interfaces lack sufficient electrical conductivity, relying on low ionic conductivity, which limits signal transduction distance. Conducting polymer hydrogels offer enhanced ionic and electronic conductivities and biocompatibility but oftenâface challenges in processability and require aggressive polymerization methods. Herein, we demonstrate inâsitu enzymatic polymerization of Ï-conjugated monomers in a hyaluronan (HA)-based hydrogel bioink to create cell-compatible, electrically conductive hydrogel structures. These structures were fabricated using 3D bioprinting of HA-based bioinks loaded with conjugated monomers, followed by enzymatic polymerization via horseradish peroxidase. This process increased the hydrogels' stiffness from about 0.6 to 1.5âkPa and modified their electroactivity. The components and polymerization process were well-tolerated by human primary dermal fibroblasts and PC12 cells. This work presents a novel method to fabricate cytocompatible and conductive hydrogels suitable for bioprinting. These hybrid materials combine tissue-like mechanical properties with mixed ionic and electronic conductivity, providing new ways to use electricity to influence cell behavior in a native-like microenvironment.
Engineering Conductive Hydrogels with Tissue-like Properties: A 3D Bioprinting and Enzymatic Polymerization Approach.
利用 3D 生物打印和酶促聚合方法构建具有组织样特性的导电水凝胶
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作者:Li Changbai, Naeimipour Sajjad, Rasti Boroojeni Fatemeh, Abrahamsson Tobias, Strakosas Xenofon, Yi Yangpeiqi, Rilemark Rebecka, Lindholm Caroline, Perla Venkata K, Musumeci Chiara, Li Yuyang, Biesmans Hanne, Savvakis Marios, Olsson Eva, Tybrandt Klas, Donahue Mary J, Gerasimov Jennifer Y, SelegÃ¥rd Robert, Berggren Magnus, Aili Daniel, Simon Daniel T
| 期刊: | Small Science | 影响因子: | 8.300 |
| 时间: | 2024 | 起止号: | 2024 Sep 1; 4(11):2400290 |
| doi: | 10.1002/smsc.202400290 | 研究方向: | 其它 |
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