Suzhou Key Laboratory of Nanobiomedicine & Division of Nanobiomedicine, Suzhou Institute of Nano-Tech and Nano-Bionics, Chinese Academy of Sciences, Suzhou Industrial Park, Jiangsu 215123, PR China.
Biomaterials. 2013 Sep;34(27):6402-11. doi: 10.1016/j.biomaterials.2013.05.024. Epub 2013 Jun 4.
One of the key challenges for neural tissue engineering is to exploit supporting materials with robust functionalities not only to govern cell-specific behaviors, but also to form functional neural network. The unique electrical and mechanical properties of graphene imply it as a promising candidate for neural interfaces, but little is known about the details of neural network formation on graphene as a scaffold material for tissue engineering. Therapeutic regenerative strategies aim to guide and enhance the intrinsic capacity of the neurons to reorganize by promoting plasticity mechanisms in a controllable manner. Here, we investigated the impact of graphene on the formation and performance in the assembly of neural networks in neural stem cell (NSC) culture. Using calcium imaging and electrophysiological recordings, we demonstrate the capabilities of graphene to support the growth of functional neural circuits, and improve neural performance and electrical signaling in the network. These results offer a better understanding of interactions between graphene and NSCs, also they clearly present the great potentials of graphene as neural interface in tissue engineering.
神经组织工程面临的一个关键挑战是利用具有强大功能的支撑材料,不仅可以控制细胞的特定行为,还可以形成功能性神经网络。石墨烯独特的电学和力学性能使其成为神经接口的理想候选材料,但关于其作为组织工程支架材料形成神经网络的细节知之甚少。治疗性再生策略旨在通过以可控的方式促进可塑性机制,来指导和增强神经元内在的重组能力。在这里,我们研究了石墨烯对神经干细胞(NSC)培养中神经网络形成和性能的影响。通过钙成像和电生理记录,我们证明了石墨烯能够支持功能性神经回路的生长,并改善网络中的神经性能和电信号。这些结果使我们更好地了解了石墨烯与 NSCs 之间的相互作用,同时也清楚地表明了石墨烯作为组织工程中神经界面的巨大潜力。