School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing, PR China.
School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing, PR China; Institute of Orthopedics, Chinese PLA General Hospital, Beijing, PR China.
Mater Sci Eng C Mater Biol Appl. 2018 Dec 1;93:853-863. doi: 10.1016/j.msec.2018.08.047. Epub 2018 Aug 21.
Electro-responsive Graphene oxide-poly(acrylic acid) (GO-PAA) nanocomposite hydrogels with different concentrations of GO were successfully fabricated via in situ polymerization. The covalently crosslinked PAA network is intertwined with GO sheets by the bridging of hydrogen-bond interactions thus resulting in an integrated and stable hydrogel network. The swelling, mechanical and conductivity properties of the hydrogel are impacted as a result. The influences of different factors on the electro-response behavior of the hydrogels were deeply explored. Because of electrostatic double layer of the GO, the response properties of hydrogels in different voltage, pH, and ionic strength improved significantly. Meanwhile, with the addition of GO, the response performance of hydrogel in biological applications was greatly expanded. Furthermore, GO-PAA hydrogel shows a good compatibility with bone marrow-derived mesenchymal stem cells (BMSCs). The electro-mechanical coupling of the hydrogel can change the morphology of the adhesive cells, and regulate the cytoskeleton of the cell under the condition of electrical stimulation, which can further promote the differentiation of neural stem cells. This electro-responsive hydrogel could be widely used in many fields of biomedical application such as artificial muscle and tissue engineering scaffold.
通过原位聚合成功制备了具有不同 GO 浓度的电响应氧化石墨烯-聚丙烯酸(GO-PAA)纳米复合水凝胶。通过氢键相互作用的桥接,共价交联的 PAA 网络与 GO 片交织在一起,从而形成一个集成和稳定的水凝胶网络。因此,水凝胶的溶胀、力学和导电性等性能受到影响。深入探讨了不同因素对水凝胶电响应行为的影响。由于 GO 的静电双层作用,水凝胶在不同电压、pH 值和离子强度下的响应性能得到了显著改善。同时,随着 GO 的加入,水凝胶在生物应用中的响应性能得到了极大的扩展。此外,GO-PAA 水凝胶与骨髓间充质干细胞(BMSCs)具有良好的相容性。水凝胶的机电耦合可以在电刺激条件下改变黏附细胞的形态,并调节细胞的细胞骨架,从而进一步促进神经干细胞的分化。这种电响应水凝胶可广泛应用于人工肌肉和组织工程支架等许多生物医学应用领域。