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具有电刺激的导电电纺支架用于结膜间充质干细胞的神经分化

Conductive electrospun scaffolds with electrical stimulation for neural differentiation of conjunctiva mesenchymal stem cells.

作者信息

Rahmani Ali, Nadri Samad, Kazemi Habib Sayed, Mortazavi Yousef, Sojoodi Mahdi

机构信息

Department of Medical Nanotechnology, Zanjan University of Medical Sciences, Zanjan, Iran.

Zanjan Metabolic Diseases Research Center, Zanjan University of Medical Sciences, Zanjan, Iran.

出版信息

Artif Organs. 2019 Aug;43(8):780-790. doi: 10.1111/aor.13425. Epub 2019 Feb 27.

Abstract

An electrical stimulus is a new approach to neural differentiation of stem cells. In this work, the neural differentiation of conjunctiva mesenchymal stem cells (CJMSCs) on a new 3D conductive fibrous scaffold of silk fibroin (SF) and reduced graphene oxide (rGo) were examined. rGo (3.5% w/w) was dispersed in SF-acid formic solution (10% w/v) and conductive nanofibrous scaffold was fabricated using the electrospinning method. SEM and TEM microscopies were used for fibrous scaffold characterization. CJMSCs were cultured on the scaffold and 2 electrical impulse models (Current 1:115 V/m, 100-Hz frequency and current 2:115 v/m voltages, 0.1-Hz frequency) were applied for 7 days. Also, the effect of the fibrous scaffold and electrical impulses on cell viability and neural gene expression were examined using MTT assay and qPCR analysis. Fibrous scaffold with the 220 ± 20 nm diameter and good dispersion of graphene nanosheets at the surface of nanofibers were fabricated. The MTT result showed the viability of cells on the scaffold, with current 2 lower than current 1. qPCR analysis confirmed that the expression of β-tubulin (2.4-fold P ≤ 0.026), MAP-2 (1.48-fold; P ≤ 0.03), and nestin (1.5-fold; P ≤ 0.03) genes were higher in CJMSCs on conductive scaffold with 100-Hz frequency compared to 0.1-Hz frequency. Collectively, we proposed that SF-rGo fibrous scaffolds, as a new conductive fibrous scaffold with electrical stimulation are good strategies for neural differentiation of stem cells and the type of electrical pulses has an influence on neural differentiation and proliferation of CJMSCs.

摘要

电刺激是干细胞神经分化的一种新方法。在这项工作中,研究了结膜间充质干细胞(CJMSCs)在新型丝素蛋白(SF)和还原氧化石墨烯(rGo)三维导电纤维支架上的神经分化情况。将rGo(3.5% w/w)分散在SF-甲酸溶液(10% w/v)中,采用静电纺丝法制备导电纳米纤维支架。利用扫描电子显微镜(SEM)和透射电子显微镜(TEM)对纤维支架进行表征。将CJMSCs接种在支架上,并施加两种电脉冲模型(电流1:115 V/m,频率100 Hz;电流2:115 v/m电压,频率0.1 Hz),持续7天。此外,使用MTT法和qPCR分析研究纤维支架和电脉冲对细胞活力和神经基因表达的影响。制备出直径为220±20 nm且石墨烯纳米片在纳米纤维表面分散良好的纤维支架。MTT结果显示细胞在支架上具有活力,电流2组的活力低于电流1组。qPCR分析证实,与0.1 Hz频率相比,在100 Hz频率的导电支架上,CJMSCs中β-微管蛋白(2.4倍;P≤0.026)、微管相关蛋白2(MAP-2,1.48倍;P≤0.03)和巢蛋白(1.5倍;P≤0.03)基因的表达更高。总体而言,我们认为SF-rGo纤维支架作为一种新型的具有电刺激的导电纤维支架,是干细胞神经分化的良好策略,电脉冲类型对CJMSCs的神经分化和增殖有影响。

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