Istituto Italiano di Tecnologia, Genoa, 16163, Italy.
Università degli studi di Genova, Genoa, 16126, Italy.
Sci Rep. 2017 Aug 17;7(1):8524. doi: 10.1038/s41598-017-08886-y.
Electroporation of in-vitro cultured cells is widely used in biological and medical areas to deliver molecules of interest inside cells. Since very high electric fields are required to electroporate the plasma membrane, depending on the geometry of the electrodes the required voltages can be very high and often critical to cell viability. Furthermore, in traditional electroporation configuration based on planar electrodes there is no a priori certain feedback about which cell has been targeted and delivered and the addition of fluorophores may be needed to gain this information. In this study we present a nanofabricated platform able to perform intracellular delivery of membrane-impermeable molecules by opening transient nanopores into the lipid membrane of adherent cells with high spatial precision and with the application of low voltages (1.5-2 V). This result is obtained by exploiting the tight seal that the cells present with 3D fluidic hollow gold-coated nanostructures that act as nanochannels and nanoelectrodes at the same time. The final soft-electroporation platform provides an accessible approach for controlled and selective drug delivery on ordered arrangements of cells.
体外培养细胞的电穿孔广泛应用于生物和医学领域,用于将感兴趣的分子递送到细胞内。由于电穿孔需要非常高的电场,因此取决于电极的几何形状,所需的电压可能非常高,而且通常对细胞活力至关重要。此外,在基于平面电极的传统电穿孔配置中,没有关于哪个细胞已被靶向和递送到该细胞的先验确定反馈,并且可能需要添加荧光染料来获取此信息。在这项研究中,我们提出了一种纳米制造平台,能够通过在贴壁细胞的脂质膜上打开瞬时纳米孔来进行不透膜分子的细胞内传递,具有高精度的空间精度,并且应用低电压(1.5-2 V)。通过利用细胞与 3D 流体中空金涂层纳米结构之间的紧密密封来实现这一结果,该纳米结构同时充当纳米通道和纳米电极。最终的软电穿孔平台为在有序排列的细胞上进行可控和选择性药物输送提供了一种可行的方法。