A theoretical model for electroporation of multilamellar lipid system due to a series of large electrical pulses is presented and then used to predict the functional dependence of the transport of charged molecules. Previously, electroporation has been considered only for single bilayer systems such as artificial planar bilayer membranes and cell membranes. The former have been extensively studied with respect to electrical and mechanical behavior, and the latter with respect to molecular transport. Recent experimental results for both molecular transport and electrical resistance changes in the stratum corneum (SC) suggest that electroporation also occurs in the multilamellar lipid membranes of the SC. In addition, there is the possibility...
Copyright © 2016 by ASME. This study develops a macroscopic model of mass transport in electroporate...
Application of 'high voltage' (HV) pulses (transdermal voltage U-skin > 50 V) to preparations of hum...
Boeckmann RA, de Groot BL, Kakorin S, Neumann E, Grubmueller H. Kinetics, statistics, and energetics...
A theoretical model for electroporation of multilamellar lipid system due to a series of large elect...
Previous in vitro experiments have shown that transdermal high-voltage pulses (Uskin ≈100 V; duratio...
The electroporation technique has been used significantly to increase drug permeation through the sk...
Electroporation is a technique that applies high voltage pulses over short time periods, resulting i...
ABSTRACT: Electroporation, the application of electric fields to alter the permeability of biologica...
Electroporation has become a powerful tool for nonviral delivery of various biomolecules such as nuc...
Molecular dynamics simulations of lipid membranes reveal the nanoscale evolution of biophysical syst...
AbstractElectroporation is the basis for the transfection of genetic material and for drug delivery ...
The mechanism by which high-voltage pulses transiently disrupt lipid bilayers in cell membranes has ...
Electroporation, the application of electric fields to alter the permeability of biological membrane...
Electroporation is believed to involve a temporary structural rearrangement of lipid bilayer membran...
Over the last 10-15 years, the electrical enhancement of drug delivery across the skin has undergone...
Copyright © 2016 by ASME. This study develops a macroscopic model of mass transport in electroporate...
Application of 'high voltage' (HV) pulses (transdermal voltage U-skin > 50 V) to preparations of hum...
Boeckmann RA, de Groot BL, Kakorin S, Neumann E, Grubmueller H. Kinetics, statistics, and energetics...
A theoretical model for electroporation of multilamellar lipid system due to a series of large elect...
Previous in vitro experiments have shown that transdermal high-voltage pulses (Uskin ≈100 V; duratio...
The electroporation technique has been used significantly to increase drug permeation through the sk...
Electroporation is a technique that applies high voltage pulses over short time periods, resulting i...
ABSTRACT: Electroporation, the application of electric fields to alter the permeability of biologica...
Electroporation has become a powerful tool for nonviral delivery of various biomolecules such as nuc...
Molecular dynamics simulations of lipid membranes reveal the nanoscale evolution of biophysical syst...
AbstractElectroporation is the basis for the transfection of genetic material and for drug delivery ...
The mechanism by which high-voltage pulses transiently disrupt lipid bilayers in cell membranes has ...
Electroporation, the application of electric fields to alter the permeability of biological membrane...
Electroporation is believed to involve a temporary structural rearrangement of lipid bilayer membran...
Over the last 10-15 years, the electrical enhancement of drug delivery across the skin has undergone...
Copyright © 2016 by ASME. This study develops a macroscopic model of mass transport in electroporate...
Application of 'high voltage' (HV) pulses (transdermal voltage U-skin > 50 V) to preparations of hum...
Boeckmann RA, de Groot BL, Kakorin S, Neumann E, Grubmueller H. Kinetics, statistics, and energetics...