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.

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.

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