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首页> 外文期刊>Journal of neural engineering >3D bioprinter applied picosecond pulsed electric fields for targeted manipulation of proliferation and lineage specific gene expression in neural stem cells
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3D bioprinter applied picosecond pulsed electric fields for targeted manipulation of proliferation and lineage specific gene expression in neural stem cells

机译:3D生物打印机将皮秒脉冲电场应用于神经干细胞中增殖和谱系特异性基因表达的靶向操纵

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摘要

Objective. Picosecond pulse electric fields (psPEF) have the potential to elicit functional changes in mammalian cells in a non-contact manner. Such electro-manipulation of pluripotent and multipotent cells could be a tool in both neural interface and tissue engineering. Here, we describe the potential of psPEF in directing neural stem cells (NSCs) gene expression, metabolism, and proliferation. As a comparison mesenchymal stem cells (MSCs) were also tested. Approach. A psPEF electrode was anchored on a customized commercially available 3D printer, which allowed us to deliver pulses with high spatial precision and systematically control the electrode position in three-axes. When the electrodes are continuously energized and their position is shifted by the 3D printer, large numbers of cells on a surface can be exposed to a uniform psPEF. With two electric field strengths (20 and 40 kV cm~(-1)), cell responses, including cell viability, proliferation, and gene expression assays, were quantified and analyzed. Main results. Analysis revealed both NSCs and MSCs showed no significant cell death after treatments. Both cell types exhibited an increased metabolic reduction; however, the response rate for MSCs was sensitive to the change of electric field strength, but for NSCs, it appeared independent of electric field strength. The change in proliferation rate was cell-type specific. MSCs underwent no significant change in proliferation whereas NSCs exhibited an electric field dependent response with the higher electric field producing less proliferation. Further, NSCs showed an upregulation of glial fibrillary acidic protein (GFAP) after 24h to 40kV cm~(-1), which is characteristic of astrocyte specific differentiation. Significance. Changes in cell metabolism, proliferation, and gene expression after picosecond pulsed electric field exposure are cell type specific.
机译:目的。皮秒脉冲电场(psPEF)可能以非接触方式引起哺乳动物细胞的功能变化。多能和多能细胞的这种电操纵可能是神经接口和组织工程中的工具。在这里,我们描述了psPEF在指导神经干细胞(NSCs)基因表达,代谢和增殖中的潜力。作为比较,还测试了间充质干细胞(MSC)。方法。将psPEF电极固定在定制的商用3D打印机上,这使我们能够以高空间精度传递脉冲并系统地控制三轴电极的位置。当电极持续通电并通过3D打印机移动其位置时,表面上的大量细胞可能会暴露于均匀的psPEF中。利用两种电场强度(20和40 kV cm〜(-1)),对细胞反应,包括细胞活力,增殖和基因表达分析进行了定量和分析。主要结果。分析显示,NSC和MSC在治疗后均未显示明显的细胞死亡。两种细胞均表现出增加的代谢减少。然而,MSCs的响应率对电场强度的变化很敏感,而对于NSCs,响应率却与电场强度无关。增殖速率的变化是细胞类型特异性的。 MSC的增殖没有显着变化,而NSC显示出电场依赖性的响应,较高的电场产生较少的增殖。此外,NSCs在24h后显示出胶质原纤维酸性蛋白(GFAP)上调至40kV cm〜(-1),这是星形胶质细胞特异性分化的特征。意义。皮秒脉冲电场暴露后,细胞代谢,增殖和基因表达的变化是细胞类型特异性的。

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  • 来源
    《Journal of neural engineering》 |2018年第5期|056021.1-056021.14|共14页
  • 作者单位

    Frank Reidy Research Center for Isoelectrics, Old Dominion University, Norfolk, Virginia, 23529, United States of America,Department of Electrical and Computer Engineering, Old Dominion University, Norfolk, Virginia, 23529, United States of America;

    Department of Medical Diagnostic and Translational Sciences, Old Dominion University, Norfolk, Virginia, 23529, United States of America,Molecular Diagnostics Laboratory, Sentara Norfolk General Hospital, Norfolk, Virginia, 23507, United States of America;

    Department of Electrical and Computer Engineering, Old Dominion University, Norfolk, Virginia, 23529, United States of America,Department of Medical Diagnostic and Translational Sciences, Old Dominion University, Norfolk, Virginia, 23529, United States of America;

    Department of Electrical and Computer Engineering, Old Dominion University, Norfolk, Virginia, 23529, United States of America,Department of Medical Diagnostic and Translational Sciences, Old Dominion University, Norfolk, Virginia, 23529, United States of America;

    Frank Reidy Research Center for Isoelectrics, Old Dominion University, Norfolk, Virginia, 23529, United States of America,Department of Electrical and Computer Engineering, Old Dominion University, Norfolk, Virginia, 23529, United States of America;

    Department of Medical Diagnostic and Translational Sciences, Old Dominion University, Norfolk, Virginia, 23529, United States of America;

    Department of Medical Diagnostic and Translational Sciences, Old Dominion University, Norfolk, Virginia, 23529, United States of America;

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  • 正文语种 eng
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  • 关键词

    induced pluripotent stem cells; 3D bioprinter; neural stem cells; neuronal stimulation; neural differentiation; mesenchymal stem cells; picosecond pulsed electric fields;

    机译:诱导多能干细胞;3D生物打印机神经干细胞神经元刺激;神经分化间充质干细胞皮秒脉冲电场;

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