4.7 Article

Electric-driven membrane poration: A rationale for water role in the kinetics of pore formation

Journal

BIOELECTROCHEMISTRY
Volume 143, Issue -, Pages -

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.bioelechem.2021.107987

Keywords

Biological Phenomena; Electroporation; Pore; Kinetics; Lipid Bilayers; Molecular Dynamics Simulation

Funding

  1. Sapienza University of Rome [RM11916B835D12D4, RM11715C7DCB8473]

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Electroporation is a technique that enhances cell membrane permeability by inducing reversible membrane pores using an electric field. This study proposes a three-state kinetic model based on the mechanism of water defects intruding at the water/lipid interface under electric field intensities. The model, supported by robust statistical sampling, provides kinetic constants for transitions from an intact bilayer state to a hydrophobic pore state.
Electroporation is a well-established technique used to stimulate cells, enhancing membrane permeability by inducing reversible membrane pores. In the absence of experimental observation of the dynamics of pore creation, molecular dynamics studies provide the molecular-level evidence that the electric field promotes pore formation. Although single steps in the pore formation process are well assessed, a kinetic model representing the mathematical description of the electroporation process, is lacking. In the present work we studied the basis of the pore formation process, providing a rationale for the definition of a first-order kinetic scheme. Here, authors propose a three-state kinetic model for the process based on the assessed mechanism of water defects intruding at the water/lipid interface, when applying electric field intensities at the edge of the linear regime. The methodology proposed is based on the use of two robust biophysical quantities analyzed for the water molecules intruding at the water/lipid interface: (i) number of hydrogen bonds; (ii) number of contacts. The final model, sustained by a robust statistical sampling, provides kinetic constants for the transitions from the intact bilayer state to the hydrophobic pore state. CO 2021 Published by Elsevier B.V.

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