Nishikawa Shin, Hirashima Naohide, Tanaka Masahiko
Department of Cellular Biophysics, Graduate School of Pharmaceutical Sciences, Nagoya City University, Nagoya, 467-8603, Japan.
Mol Biotechnol. 2014 Sep;56(9):824-32. doi: 10.1007/s12033-014-9761-1.
The development and function of the central nervous system (CNS) are realized through interactions between many neurons. To investigate cellular and molecular mechanisms of the development and function of the CNS, it is thus crucial to be able to manipulate the gene expression of single neurons in a complex cell population. We recently developed a technique for gene silencing by introducing small interfering RNA into single neurons in primary CNS cultures using single-cell electroporation. However, we had not succeeded in forced gene expression by introducing expression plasmids using single-cell electroporation. In the present study, we optimized the experimental conditions to enable the forced expression of green fluorescent protein (GFP) in cultured cerebellar Purkinje neurons using single-cell electroporation. We succeeded in strong GFP expression in Purkinje neurons by increasing the inside diameter of micropipettes or by making the size of the original plasmid smaller by digestion and cyclizing it by ligation. Strong GFP expression in Purkinje neurons electroporated under the optimal conditions continued to be observed for more than 25 days after electroporation. Thus, this technique could be used for forced gene expression in single neurons to investigate cellular and molecular mechanisms of the development, function, and disease of the CNS.
中枢神经系统(CNS)的发育和功能是通过许多神经元之间的相互作用来实现的。因此,为了研究中枢神经系统发育和功能的细胞及分子机制,能够在复杂的细胞群体中操纵单个神经元的基因表达至关重要。我们最近开发了一种技术,通过单细胞电穿孔将小干扰RNA导入原代中枢神经系统培养物中的单个神经元来实现基因沉默。然而,我们未能通过单细胞电穿孔导入表达质粒来实现强制基因表达。在本研究中,我们优化了实验条件,以能够通过单细胞电穿孔在培养的小脑浦肯野神经元中强制表达绿色荧光蛋白(GFP)。通过增加微量移液器的内径或通过酶切使原始质粒变小并通过连接使其环化,我们成功地在浦肯野神经元中实现了强烈的GFP表达。在最佳条件下进行电穿孔的浦肯野神经元中,强烈的GFP表达在电穿孔后持续观察到超过25天。因此,该技术可用于单个神经元的强制基因表达,以研究中枢神经系统发育、功能和疾病的细胞及分子机制。