Electrical stimulation of neonatal rat cardiomyocytes using conductive polydopamine-reduced graphene oxide-hybrid hydrogels for constructing cardiac microtissues
[Display omitted] •The graphene oxide-based nanomaterials have promoted great progress in cardiac tissue engineering.•Dopamine-reduced graphene oxide was doped into hydrogel scaffolds to enhance conductivity and mechanical stiffness.•Cardiomyocytes on the conductive scaffold revealed improved functi...
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Veröffentlicht in: | Colloids and surfaces, B, Biointerfaces B, Biointerfaces, 2021-09, Vol.205, p.111844-111844, Article 111844 |
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Sprache: | eng |
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•The graphene oxide-based nanomaterials have promoted great progress in cardiac tissue engineering.•Dopamine-reduced graphene oxide was doped into hydrogel scaffolds to enhance conductivity and mechanical stiffness.•Cardiomyocytes on the conductive scaffold revealed improved functionalities than poorly conductive ones.•Applying electrical stimulation on conductive scaffold synergistically engineering a more mature cardiac microtissue.
The development of diversified biomaterials in tissue engineering has been promoted by growing research into carbon-based nanomaterials. Usually, ideal scaffold materials should possess properties similar to the extracellular matrix of natural myocardial tissue. In this study, dopamine-reduced graphene oxide (GO), was prepared and doped into gelatin methacrylate (GelMA) hydrogels, resulting in novel conductive and mechanical properties for controlling cell growth. Cardiomyocytes (CMs) cultured on PDA-rGO-incorporated hydrogels (GelMA-PDA-rGO) had greater cytocompatibility than those cultured on GelMA hydrogels, as evidenced by higher cell survival rates and up-regulation of cardiac-relevant proteins. Finally, electrical stimulation was applied to facilitate the maturation of CMs which was seeded on different hydrogels. The findings revealed that electrical stimulation of conductive hybrid hydrogel scaffolds improved the orientational order parameter of sarcomeres (OOP). In addition, propagation of intercellular pacing signals, which improves the expression of gap junction proteins was noticed, likewise calcium handling capacity was present in conductive hybrid hydrogels compared to those in pure GelMA group. This study has shown that the combination of GelMA-PDA-rGO based conductive hydrogels and electrical stimulation possessed synergistic effects for engineering a more functional and mature myocardium layer as well as further application in drug screening and disease modeling in vitro. |
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ISSN: | 0927-7765 1873-4367 |
DOI: | 10.1016/j.colsurfb.2021.111844 |