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3D culture of neural stem cells within conductive PEDOT layer-assembled chitosan/gelatin scaffolds for neural tissue engineering

机译:导电PEDOT层组装的壳聚糖/明胶支架中神经干细胞的3D培养,用于神经组织工程

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摘要

Neural stem cells (NSCs), as a self-renewing and multipotent cell population, have been widely studied for never regeneration. Engineering scaffold is one of the important factors to regulate NSCs proliferation and differentiation towards the formation of the desired cells and tissues. Because neural cells are electro-active ones, a conductive scaffold is required to provide three-dimensional cell growth microenvironments and appropriate synergistic cell guidance cues. In this study, a poly (3,4‑ethylenedioxythiophene)/chitosan/gelatin (PEDOT/Cs/Gel) scaffold was preparedvia in situinterfacial polymerization, with a nanostructured layer of PEDOT assembling on the channel surface of porous Cs/Gel scaffold. This electrically conductive, three-dimensional, porous and biodegradable PEDOT/Cs/Gel scaffold was used as a novel scaffold for NSCs three-dimension (3D) culturein vitro. It was found that the layer of PEDOT on the channel surface of Cs/Gel scaffolds could greatly promote NSCs adhesion and proliferation. Additionally, under the differentiation condition, the protein and gene analysis suggested that PEDOT/Cs/Gel scaffolds could significantly enhance the NSCs differentiation towards neurons and astrocytes with the up-regulation of β tubulin-III and GFAP expression. In conclusion, these results demonstrated that the PEDOT/Cs/Gel scaffolds as an electrically conductive scaffold could not only promote NSCs adhesion and proliferation but also enhance NSCs differentiation into neurons and astrocytes with higher protein and gene expression. PEDOT-assembled Cs/Gel scaffold will be a promising conductive substrate for NSCs research and neural tissue engineering.
机译:神经干细胞(NSCs)作为一种自我更新的多能细胞群体,已经为永不再生进行了广泛的研究。工程支架是调节NSC增殖和分化以形成所需细胞和组织的重要因素之一。因为神经细胞是电活性细胞,所以需要导电支架来提供三维细胞生长微环境和适当的协同细胞指导线索。在这项研究中,通过原位界面聚合制备了聚(3,4-亚乙基二氧噻吩)/壳聚糖/明胶(PEDOT / Cs / Gel)支架,在多孔Cs / Gel支架的通道表面上组装了PEDOT的纳米结构层。这种导电的,三维,多孔和可生物降解的PEDOT / Cs / Gel支架被用作体外NSC三维(3D)培养的新型支架。发现在Cs / Gel支架的通道表面上的PEDOT层可以极大地促进NSCs的粘附和增殖。此外,在分化条件下,蛋白质和基因分析表明,PEDOT / Cs / Gel支架可以显着增强NSCs向神经元和星形胶质细胞的分化,同时上调β微管蛋白III和GFAP的表达。总之,这些结果表明,作为导电支架的PEDOT / Cs / Gel支架不仅可以促进NSC的粘附和增殖,还可以增强NSC分化为具有更高蛋白质和基因表达的神经元和星形胶质细胞。 PEDOT组装的Cs / Gel支架将成为NSC研究和神经组织工程的有希望的导电基质。

著录项

  • 来源
    《Materials science & engineering》 |2018年第12期|890-901|共12页
  • 作者单位

    Dalian R&D Center for Stem Cell and Tissue Engineering, Dalian University of Technology;

    Dalian R&D Center for Stem Cell and Tissue Engineering, Dalian University of Technology;

    Dalian R&D Center for Stem Cell and Tissue Engineering, Dalian University of Technology;

    Dalian R&D Center for Stem Cell and Tissue Engineering, Dalian University of Technology;

    School of Life Science and Medicine, Dalian University of Technology;

    Department of Biomedical Engineering, Dalian University of Technology;

    Dalian R&D Center for Stem Cell and Tissue Engineering, Dalian University of Technology;

    Dalian R&D Center for Stem Cell and Tissue Engineering, Dalian University of Technology;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Conducting polymer; 3D culture; Neural stem cell; Proliferation; Differentiation;

    机译:导电聚合物;3D培养;神经干细胞;增殖;分化;
  • 入库时间 2022-08-18 04:07:47

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