Activation energy for pore opening in lipid membranes under an electric field

Author:

Lafarge Eulalie J.1ORCID,Muller Pierre1ORCID,Schroder André P.2,Zaitseva Ekaterina34,Behrends Jan C.3,Marques Carlos M.15ORCID

Affiliation:

1. Charles Sadron Institute, UP22, University of Strasbourg, CNRS, Strasbourg 67034, France

2. University of Lyon, CNRS, INSA Lyon, LaMCoS, UMR5259, Villeurbanne 69621, France

3. Membrane Physiology and Technology, Institute of Physiology, University of Freiburg, Freiburg 79104, Germany

4. Ionera Technologies GmbH, Freiburg 79104, Germany

5. University of Lyon, ENS-Lyon, Chemistry Laboratory, CNRS UMR 5182, Lyon 69342, France

Abstract

The standard model of pore formation was introduced more than fifty years ago, and it has been since, despite some refinements, the cornerstone for interpreting experiments related to pores in membranes. A central prediction of the model concerning pore opening under an electric field is that the activation barrier for pore formation is lowered proportionally to the square of the electric potential. However, this has only been scarcely and inconclusively confronted to experiments. In this paper, we study the electropermeability of model lipid membranes composed of 1-palmitoyl-2-oleoyl-glycero-3-phosphocholine (POPC) containing different fractions of POPC-OOH, the hydroperoxidized form of POPC, in the range 0 to 100 mol %. By measuring ion currents across a 50-μm-diameter black lipid membrane (BLM) with picoampere and millisecond resolution, we detect hydroperoxidation-induced changes to the intrinsic bilayer electropermeability and to the probability of opening angstrom-size or larger pores. Our results over the full range of lipid compositions show that the energy barrier to pore formation is lowered linearly by the absolute value of the electric field, in contradiction with the predictions of the standard model.

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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