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Seeing the electroporative uptake of cell-membrane impermeable fluorescent molecules and nanoparticles

机译:看到electroporative吸收细胞膜不透水荧光分子和纳米粒子

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This paper presents direct visualization of uptake directionality for cell-membrane impermeant fluorescent molecules and fluorescence-doped nanoparticles at a single-cell level during electroporation. To observe directly the uptake direction, we used microchannel-type electroporation that can generate a relatively symmetric and uniform electric field. For all the image frames during electroporation, fluorescence intensities that occurred at cell membranes in both uptake directions toward the electrodes have been sequentially recorded and quantitatively analyzed pixel by pixel. In our experiments, we found that fluorescent molecules, even not labeled to target biomolecules, had their own uptake direction with different intensities. It is also observed that the uptake intensity toward the cell membrane had a maximal value at a certain electric voltage, not at the highest value of voltages applied. The results also imply that the uptake direction of fluorescence-doped nanoparticles can be determined by a net surface charge of uptake materials and sizes in the electroporative environments. In summary, we performed a quantitative screening and direct visualization of uptake directionality for a set of fluorescent molecules and fluorescence-doped nanoparticles using electric-pulsation. Taking a closer look at the uptake direction of exogenous materials will help researchers to understand an unknown uptake phenomenon in which way foreign materials are inclined to move, and furthermore to design functional nanoparticles for electroporative gene delivery.
机译:介绍了直接吸收的可视化方向性的细胞膜impermeant荧光分子和fluorescence-doped纳米颗粒在单细胞水平上电穿孔。方向,我们使用microchannel-type电穿孔,可以生成一个相对对称和均匀电场。图像帧在电穿孔,荧光发生在细胞膜的强度两个吸收向电极方向按顺序记录和定量分析了像素的像素。发现,荧光分子,甚至没有目标生物分子标记,有自己的吸收方向具有不同的强度。也观察到,吸收强度对吗在细胞膜有最大价值一定的电压,而不是最高电压应用的价值。吸收fluorescence-doped方向纳米颗粒可以由净表面吸收的材料和尺寸electroporative环境。进行了定量筛选和直接可视化的吸收为一组方向荧光分子和fluorescence-doped使用electric-pulsation纳米颗粒。近距离观察外源性的吸收方向材料将帮助研究人员理解未知的方式对外吸收现象材料是倾向于移动,而且设计功能纳米粒子electroporative基因传递。

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