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喷墨打印石墨烯电路诱导间充质干细胞向施万细胞样表型分化。

Electrical Differentiation of Mesenchymal Stem Cells into Schwann-Cell-Like Phenotypes Using Inkjet-Printed Graphene Circuits.

机构信息

Department of Mechanical Engineering, Iowa State University, Ames, IA, 50011, USA.

Division of Materials Science and Engineering, Ames Laboratory Department of Energy, Ames, IA, 50011, USA.

出版信息

Adv Healthc Mater. 2017 Apr;6(7). doi: 10.1002/adhm.201601087. Epub 2017 Feb 20.

Abstract

Graphene-based materials (GBMs) have displayed tremendous promise for use as neurointerfacial substrates as they enable favorable adhesion, growth, proliferation, spreading, and migration of immobilized cells. This study reports the first case of the differentiation of mesenchymal stem cells (MSCs) into Schwann cell (SC)-like phenotypes through the application of electrical stimuli from a graphene-based electrode. Electrical differentiation of MSCs into SC-like phenotypes is carried out on a flexible, inkjet-printed graphene interdigitated electrode (IDE) circuit that is made highly conductive (sheet resistance < 1 kΩ/sq) via a postprint pulse-laser annealing process. MSCs immobilized on the graphene printed IDEs and electrically stimulated/treated (etMSCs) display significant enhanced cellular differentiation and paracrine activity above conventional chemical treatment strategies [≈85% of the etMSCs differentiated into SC-like phenotypes with ≈80 ng mL of nerve growth factor (NGF) secretion vs. 75% and ≈55 ng mL for chemically treated MSCs (ctMSCs)]. These results help pave the way for in vivo peripheral nerve regeneration where the flexible graphene electrodes could conform to the injury site and provide intimate electrical simulation for nerve cell regrowth.

摘要

基于石墨烯的材料(GBMs)作为神经界面基底具有巨大的应用潜力,因为它们可以促进固定细胞的良好粘附、生长、增殖、扩散和迁移。本研究首次报告了通过基于石墨烯的电极施加电刺激将间充质干细胞(MSCs)分化为施万细胞(SCs)样表型的情况。在柔性喷墨印刷石墨烯叉指电极(IDE)电路上进行 MSC 向 SC 样表型的电分化,该电路通过后印刷脉冲激光退火工艺使其具有高导电性(方阻<1 kΩ/sq)。固定在石墨烯印刷 IDE 上并进行电刺激/处理的 MSC(etMSCs)表现出明显增强的细胞分化和旁分泌活性,优于传统的化学处理策略[约 85%的 etMSCs 分化为 SC 样表型,分泌约 80ng/mL 的神经生长因子(NGF),而化学处理的 MSC(ctMSCs)分别为 75%和 55ng/mL]。这些结果为体内周围神经再生铺平了道路,其中柔性石墨烯电极可以适应损伤部位并为神经细胞再生提供紧密的电模拟。

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