4.7 Article

Electrically Conductive and 3D-Printable Oxidized Alginate-Gelatin Polypyrrole:PSS Hydrogels for Tissue Engineering

期刊

ADVANCED HEALTHCARE MATERIALS
卷 10, 期 9, 页码 -

出版社

WILEY
DOI: 10.1002/adhm.202001876

关键词

3D‐ printing; biomaterials; electrically conductive hydrogels; oxidized alginate; polypyrrole; tissue engineering

资金

  1. Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) [SFB 1270/1-299150580, 326998133-TRR-225]
  2. Engineering and Physical Sciences Research Council (EPSRC) [EP/R512564/1, 2065445]
  3. EPSRC [2065445] Funding Source: UKRI

向作者/读者索取更多资源

Electroactive hydrogels incorporating pyrrole and high gelatin-content oxidized alginate-gelatin (ADA-GEL) have been developed, with electroactive polypyrrole synthesized inside the ADA-GEL matrix. These hydrogels exhibit 3D printability, cytocompatibility, and conductivity, making them promising for cell therapies and electrical-stimulation assisted tissue engineering.
Electroactive hydrogels can be used to influence cell response and maturation by electrical stimulation. However, hydrogel formulations which are 3D printable, electroactive, cytocompatible, and allow cell adhesion, remain a challenge in the design of such stimuli-responsive biomaterials for tissue engineering. Here, a combination of pyrrole with a high gelatin-content oxidized alginate-gelatin (ADA-GEL) hydrogel is reported, offering 3D-printability of hydrogel precursors to prepare cytocompatible and electrically conductive hydrogel scaffolds. By oxidation of pyrrole, electroactive polypyrrole:polystyrenesulfonate (PPy:PSS) is synthesized inside the ADA-GEL matrix. The hydrogels are assessed regarding their electrical/mechanical properties, 3D-printability, and cytocompatibility. It is possible to prepare open-porous scaffolds via bioplotting which are electrically conductive and have a higher cell seeding efficiency in scaffold depth in comparison to flat 2D hydrogels, which is confirmed via multiphoton fluorescence microscopy. The formation of an interpenetrating polypyrrole matrix in the hydrogel matrix increases the conductivity and stiffness of the hydrogels, maintaining the capacity of the gels to promote cell adhesion and proliferation. The results demonstrate that a 3D-printable ADA-GEL can be rendered conductive (ADA-GEL-PPy:PSS), and that such hydrogel formulations have promise for cell therapies, in vitro cell culture, and electrical-stimulation assisted tissue engineering.

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