University of Ljubljana, Faculty of Electrical Engineering, Trzaska 25, SI-1000 Ljubljana, Slovenia.
Bioelectrochemistry. 2010 Oct;79(2):265-71. doi: 10.1016/j.bioelechem.2010.04.001. Epub 2010 Apr 22.
Gene electrotransfer is a promising nonviral method that enables DNA to be transferred into living cells with electric pulses. However, there are many parameters that determine gene electrotransfer efficiency. One of the steps involved in gene electrotransfer is interaction of DNA with the cell membrane. Divalent cations in the electroporative media can influence the anchoring of DNA to the cell membrane and by that gene electrotransfer efficiency. Here we report the effect of different concentrations of Mg2+ on electropermeabilization for small molecule (propidium iodide), gene electrotransfer and viability of the cells. We also used TOTO-1 dye to visualize DNA-cell membrane interaction for different [Mg]. For this purpose, we used different electroporative media with increasing [Mg]. Our study shows that higher [Mg] lead to higher electropermeabilization for propidium iodide and higher viability, while causing lower gene electrotransfer efficiency. Because we observed higher TOTO-1 labeled DNA at cell surface when using higher [Mg], we suggest that Mg2+ ions can bind DNA at cell surface at such strength that cannot pass into the cell during application of electric pulses, which can lead to lower gene transfection. There may also be other mechanisms involved, since there are many steps of gene electrotransfer on which Mg2+ ions can have an effect on. Our results also imply that membrane permeability changes are not sufficient for an efficient gene electrotransfer.
基因电转移是一种很有前途的非病毒方法,它可以利用电脉冲将 DNA 转入活细胞。然而,有许多参数决定了基因电转移的效率。基因电转移涉及的步骤之一是 DNA 与细胞膜的相互作用。电穿孔介质中的二价阳离子可以影响 DNA 与细胞膜的锚定,从而影响基因电转移的效率。在这里,我们报告了不同浓度的 Mg2+对小分子(碘化丙啶)的电穿孔、基因电转移和细胞活力的影响。我们还使用 TOTO-1 染料来观察不同 [Mg] 下 DNA 与细胞膜的相互作用。为此,我们使用了不同的电穿孔介质,增加了 [Mg]。我们的研究表明,较高的 [Mg] 导致碘化丙啶的电穿孔率更高,细胞活力更高,而基因电转移效率更低。因为我们观察到在使用较高的 [Mg] 时,在细胞膜表面有更多的 TOTO-1 标记的 DNA,所以我们认为 Mg2+ 离子可以在细胞膜表面与 DNA 结合,这种结合力在施加电脉冲时不足以使 DNA 进入细胞,从而导致基因转染效率降低。可能还有其他机制参与其中,因为基因电转移有许多步骤,Mg2+ 离子可能对这些步骤都有影响。我们的结果还表明,膜通透性的变化不足以实现有效的基因电转移。