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Analysis of electrostimulation and electroporation by high repetition rate bursts of nanosecond stimuli
- Source :
- Bioelectrochemistry (Amsterdam, Netherlands). 140
- Publication Year :
- 2020
-
Abstract
- Exposures to short-duration, strong electric field pulses have been utilized for stimulation, ablation, and the delivery of molecules into cells. Ultrashort, nanosecond duration pulses have shown unique benefits, but they require higher field strengths. One way to overcome this requirement is to use trains of nanosecond pulses with high repetition rates, up to the MHz range. Here we present a theoretical model to describe the effects of pulse trains on the plasma membrane and intracellular membranes modeled as resistively charged capacitors. We derive the induced membrane potential and the stimulation threshold as functions of pulse number, pulse duration, and repetition rate. This derivation provides a straightforward method to calculate the membrane charging time constant from experimental data. The derived excitation threshold agrees with nerve stimulation experiments, indicating that nanosecond pulses are not more effective than longer pulses in charging nerve fibers. The derived excitation threshold does not, however, correctly predict the nanosecond stimulation of cardiomyocytes. We show that a better agreement is possible if multiple charging time constants are considered. Finally, we expand the model to intracellular membranes and show that pulse trains do not lead to charge buildup, but can create significant oscillations of the intracellular membrane potential.
- Subjects :
- Materials science
Cell Membrane Permeability
Biophysics
02 engineering and technology
01 natural sciences
Models, Biological
law.invention
law
Electric field
Electrochemistry
Animals
Myocytes, Cardiac
Physical and Theoretical Chemistry
Pulse (signal processing)
010401 analytical chemistry
Cell Membrane
Time constant
Pulse duration
General Medicine
Nanosecond
021001 nanoscience & nanotechnology
Electric Stimulation
0104 chemical sciences
Capacitor
Membrane
Electroporation
Calcium
Atomic physics
0210 nano-technology
Excitation
Subjects
Details
- ISSN :
- 1878562X
- Volume :
- 140
- Database :
- OpenAIRE
- Journal :
- Bioelectrochemistry (Amsterdam, Netherlands)
- Accession number :
- edsair.doi.dedup.....e5935cc75418567c263a69f00e07bbd1