Caprettini Valeria, Huang Jian-An, Moia Fabio, Jacassi Andrea, Gonano Carlo Andrea, Maccaferri Nicolò, Capozza Rosario, Dipalo Michele, De Angelis Francesco
Istituto Italiano di Tecnologia Via Morego 30 16163 Genoa Italy.
Adv Sci (Weinh). 2018 Oct 23;5(12):1800560. doi: 10.1002/advs.201800560. eCollection 2018 Dec.
3D nanostructures are widely exploited in cell cultures for many purposes such as controlled drug delivery, transfection, intracellular sampling, and electrical recording. However, little is known about the interaction of the cells with these substrates, and even less about the effects of electroporation on the cellular membrane and the nuclear envelope. This work exploits 3D plasmonic nanoelectrodes to study, by surface-enhanced Raman scattering (SERS), the cell membrane dynamics on the nanostructured substrate before, during, and after electroporation. In vitro cultured cells tightly adhere on 3D plasmonic nanoelectrodes precisely in the plasmonic hot spots, making this kind of investigation possible. After electroporation, the cell membrane dynamics are studied by recording the Raman time traces of biomolecules in contact or next to the 3D plasmonic nanoelectrode. During this process, the 3D plasmonic nanoelectrodes are intracellularly coupled, thus enabling the monitoring of different molecular species, including lipids, proteins, and nucleic acids. Scanning electron microscopy cross-section analysis evidences the possibility of nuclear membrane poration compatible with the reported Raman spectra. These findings may open a new route toward controlled intracellular sampling and intranuclear delivery of genic materials. They also show the possibility of nuclear envelope disruption which may lead to negative side effects.
三维纳米结构在细胞培养中被广泛应用于多种目的,如可控药物递送、转染、细胞内采样和电记录等。然而,对于细胞与这些底物之间的相互作用知之甚少,对于电穿孔对细胞膜和核膜的影响更是了解不足。这项工作利用三维等离子体纳米电极,通过表面增强拉曼散射(SERS)来研究电穿孔前、电穿孔期间和电穿孔后纳米结构底物上的细胞膜动力学。体外培养的细胞精确地紧密附着在三维等离子体纳米电极的等离子体热点上,使得这种研究成为可能。电穿孔后,通过记录与三维等离子体纳米电极接触或相邻的生物分子的拉曼时间轨迹来研究细胞膜动力学。在此过程中,三维等离子体纳米电极与细胞内耦合,从而能够监测包括脂质、蛋白质和核酸在内的不同分子种类。扫描电子显微镜横截面分析证明了与所报道的拉曼光谱相符的核膜穿孔可能性。这些发现可能为可控的细胞内采样和基因材料的核内递送开辟一条新途径。它们还表明了核膜破裂的可能性,这可能会导致负面的副作用。