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ITO/金纳米粒子/RGD 肽复合材料增强人神经干细胞的电化学信号和增殖。

ITO/gold nanoparticle/RGD peptide composites to enhance electrochemical signals and proliferation of human neural stem cells.

机构信息

Department of Chemical & Biomolecular Engineering, Sogang University, Seoul, Republic of Korea.

出版信息

Nanomedicine. 2013 Apr;9(3):336-44. doi: 10.1016/j.nano.2012.08.006. Epub 2012 Sep 6.

DOI:10.1016/j.nano.2012.08.006
PMID:22960194
Abstract

UNLABELLED

A cell chip composed of ITO, gold nanoparticles (GNP) and RGD-MAP-C peptide composites was fabricated to enhance the electrochemical signals and proliferation of undifferentiated human neural stem cells (HB1.F3). The structural characteristics of the fabricated surfaces were confirmed by both scanning electron microscopy and surface-enhanced Raman spectroscopy. HB1.F3 cells were allowed to attach to various composites electrodes in the cell chip and the material-dependent effects on electrochemical signals and cell proliferation were analyzed. The ITO/60 nm GNP/RGD-MAP-C composite electrode was found to be the best material in regards to enhancing the voltammetric signals of HB1.F3 cells when exposed to cyclic voltammetry, as well as for increasing cell proliferation. Differential pulse voltammetry was performed to evaluate the adverse effects of doxorubicin on HB1.F3 cells. In these experiments, negative correlations between cell viability and chemical concentrations were obseved, which were more sensitive than MTT viability assay especially at low concentrations (<0.1 μg/mL).

FROM THE CLINICAL EDITOR

In this basic science study, a cell chip composed of ITO, gold nanoparticles and RGD-MAP-C peptide composites was fabricated to enhance electrochemical signals and proliferation of undifferentiated human neural stem cells (HB1.F3). The ITO/60 nm GNP/RGD-MAP-C composite electrode was found to best enhance the voltammetric signals of the studied cells.

摘要

未加标签

制造了一种由 ITO、金纳米粒子(GNP)和 RGD-MAP-C 肽复合物组成的细胞芯片,以增强未分化的人神经干细胞(HB1.F3)的电化学信号和增殖。通过扫描电子显微镜和表面增强拉曼光谱证实了制造表面的结构特征。允许 HB1.F3 细胞附着在细胞芯片中的各种复合材料电极上,并分析了材料对电化学信号和细胞增殖的影响。发现 ITO/60nm GNP/RGD-MAP-C 复合电极在循环伏安法下增强 HB1.F3 细胞的伏安信号方面以及增加细胞增殖方面效果最佳。进行差分脉冲伏安法以评估阿霉素对 HB1.F3 细胞的不良影响。在这些实验中,观察到细胞活力与化学浓度之间的负相关,这比 MTT 活力测定法更敏感,尤其是在低浓度(<0.1μg/mL)下。

临床编辑

在这项基础科学研究中,制造了一种由 ITO、金纳米粒子和 RGD-MAP-C 肽复合物组成的细胞芯片,以增强未分化的人神经干细胞(HB1.F3)的电化学信号和增殖。ITO/60nm GNP/RGD-MAP-C 复合电极被发现可最佳增强研究细胞的伏安信号。

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