2D Ti 3C 2T x Mxene偶联电刺激促进神经干细胞增殖和神经分化

Rongrong Guo, M. Xiao, Wanyu Zhao, Shan Zhou, Yangnan Hu, Menghui Liao, Shengping Wang, Xiaowei Yang, R. Chai, Mingliang Tang
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引用次数: 55

摘要

涉及干细胞的临床前研究需要对这些细胞的命运进行有效的物理化学调节。由于其独特的平面结构、金属导电性和灵活的表面功能化,MXenes显示出调节干细胞命运的潜力。在这里,Ti3C2Tx MXene纳米片被分散在组织培养聚苯乙烯(TCPS)上。小鼠原代神经干细胞(NSCs)在层粘连蛋白包被的Ti3C2Tx MXene膜上培养,形成稳定的粘附,保持其增殖能力,并表现出广泛的末梢延伸。在功能活性方面,在Ti3C2Tx MXene膜上培养的NSCs比在TCPS基质上培养的NSCs形成更活跃和同步的网络活性。此外,Ti3C2Tx MXene膜显著促进了神经分化,神经元的神经突更长,分支点和分支尖端数量更多。在Ti3C2Tx MXene薄膜上生长的nsc来源的神经元保留了正常的突触发育。最后,电刺激结合Ti3C2Tx MXene膜可显著增强NSCs的增殖。这些结果表明,Ti3C2Tx MXene是NSC细胞增殖和神经分化以及NSC来源神经元成熟的有效接口,这扩大了MXene家族材料的潜在用途,并为干细胞研究提供了新的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
2D Ti 3C 2T x Mxene Couples Electrical Stimulation to Promote Proliferation and Neural Differentiation of Neural Stem Cells
Preclinical studies involving stem cells require efficient physiochemical regulations on the fate of such cells. Because of their unique planar structure, metallic conductivity, and flexible surface functionalization, MXenes show potential for modulating stem cell fate. Here, the Ti3C2Tx MXene nanosheets are dispersed on tissue culture polystyrene (TCPS). When primary mouse neural stem cells (NSCs) are cultured on laminin-coated Ti3C2Tx MXene film, they form stable adhesion, retain their proliferative ability, and show extensive spreading of terminal extensions . With respect to their functional activity, NSCs cultured on Ti3C2Tx MXene films form more active and synchronous network activity than those cultured on TCPS substrates. Moreover, Ti3C2Tx MXene film significantly promotes the neural differentiation and the neurons have longer neurites and greater numbers of branch points and branch tips. NSC-derived neurons grown on the Ti3C2Tx MXene film preserved normal synapse development. Finally, electrical stimulation coupled with Ti3C2Tx MXene film significantly enhances the proliferation of NSCs. These results indicate that Ti3C2Tx MXene is an efficient interface for the proliferation and neural differentiation of NSC and the maturation of NSC-derived neurons, which expands the potential uses of the MXene family of materials and provides new strategies for stem cell studies.
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