Electrically conductive hydrogels are gaining attention owing to their applications in biosensing, cellular interfaces, and tissue engineering. However, conventional hydrogels often lack adequate electrical conductivities. Here, we present two novel conductive alginate-based hydrogels designed for extrusion-based 3D bioprinting: (i) covalently synthesized alginate-polypyrrole (alginate-PPy) via EDC/NHS-mediated conjugation with 3-aminopropyl pyrrole, and (ii) nanoparticle-reinforced alginate blended with polypyrrole nanoparticles (alginate@PPy-NP). Both systems exhibited shear-thinning behavior, tunable viscoelasticity, and excellent printability. Alginate@PPy-NP demonstrated superior compressive strength and shape fidelity, whereas alginate-PPy showed enhanced elastic moduli (G'/Gâ³), reflecting a more uniform gel network. Electrical conductivity increased with increasing pyrrole content in both formulations. Optimization of the composition and printing conditions enabled the fabrication of fibroblast-laden constructs with high structural integrity. This work highlights the potential of alginate-polypyrrole hydrogels as customizable, conductive bioinks for 3D bioprinting in regenerative medicine.
Development of Covalently Functionalized Alginate-Pyrrole and Polypyrrole-Alginate Nanocomposites as 3D Printable Electroconductive Bioinks.
开发共价功能化的藻酸盐-吡咯和聚吡咯-藻酸盐纳米复合材料作为3D打印导电生物墨水
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作者:Paul Abraham Abbey, Kryukov Olga, Bandela Anil Kumar, Muadi Hamody, Ashkenasy Nurit, Cohen Smadar, Marks Robert S
| 期刊: | Materials | 影响因子: | 3.200 |
| 时间: | 2025 | 起止号: | 2025 Jul 1; 18(13):3120 |
| doi: | 10.3390/ma18133120 | ||
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