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Updated: Jun 1, 2026

High efficiency, Site-specific Transfection of Adherent Cells with siRNA Using Microelectrode Arrays (MEA)
Published on: September 13, 2012
Direct visualization at the single-cell level of siRNA electrotransfer into cancer cells
A Paganin-Gioanni1, E Bellard, J M Escoffre
1CNRS (Centre National de Recherche Scientifique), IPBS (Institut de Pharmacologie et de Biologie Structurale), 205 route de Narbonne, F-31077 Toulouse, France.
Abstract:
The RNA interference-mediated gene silencing approach is promising for therapies based on the targeted inhibition of disease-relevant genes. Electropermeabilization is one of the nonviral methods successfully used to transfer siRNA into living cells in vitro and in vivo. Although this approach is effective in the field of gene silencing by RNA interference, very little is known about the basic processes supporting siRNA transfer. In this study, we investigated, by direct visualization at the single-cell level, the delivery of Alexa Fluor 546-labeled siRNA into murine melanoma cells stably expressing the enhanced green fluorescent protein (EGFP) as a target gene. The electrotransfer of siRNA was quantified by time lapse fluorescence microscopy and was correlated with the silencing of egfp expression. A direct transfer into the cell cytoplasm of the negatively charged siRNA was observed across the plasma membrane exclusively on the side facing the cathode. When added after electropulsation, the siRNA was inefficient for gene silencing because it did not penetrate the cells. Therefore, we report that an electric field acts on both the permeabilization of the cell plasma membrane and on the electrophoretic drag of the negatively charged siRNA molecules from the bulk phase into the cytoplasm. The transfer kinetics of siRNA are compatible with the creation of nanopores, which are described with the technique of synthetic nanopores. The mechanism involved was clearly specific for the physico-chemical properties of the electrotransferred molecule and was different from that observed with small molecules or plasmid DNA.
Insights
Electropermeabilization effectively delivers small interfering RNA (siRNA) into cells for gene silencing. An electric field drives siRNA into the cytoplasm through nanopore formation, crucial for therapeutic applications.
Area of Science:
- Biotechnology
- Molecular Biology
- Cell Biology
Background:
- RNA interference (RNAi) is a promising gene silencing strategy for disease treatment.
- Electropermeabilization is a nonviral method for delivering siRNA into cells.
- The precise mechanisms of siRNA delivery via electropermeabilization remain unclear.
Purpose of the Study:
- To investigate the direct visualization and mechanisms of siRNA delivery into murine melanoma cells using electropermeabilization.
- To correlate siRNA electrotransfer with gene silencing efficacy.
- To elucidate the role of the electric field in siRNA transport.
Main Methods:
- Direct visualization of Alexa Fluor 546-labeled siRNA delivery using time-lapse fluorescence microscopy.
- Quantification of siRNA electrotransfer and correlation with EGFP gene silencing.
- Single-cell level analysis of siRNA transport dynamics.
Main Results:
- siRNA was observed to transfer directly into the cytoplasm exclusively on the cathode-facing side of the plasma membrane.
- siRNA added post-electropulsation showed inefficient cellular penetration and gene silencing.
- Electric fields facilitate both plasma membrane permeabilization and electrophoretic drag of siRNA.
Conclusions:
- The electric field plays a dual role in siRNA electrotransfer: permeabilizing the cell membrane and driving siRNA into the cytoplasm.
- siRNA transfer kinetics suggest the formation of nanopores, similar to synthetic nanopore mechanisms.
- The electrotransfer mechanism is specific to the physicochemical properties of siRNA, differing from small molecules or plasmid DNA delivery.

