Control of the Electroporation Efficiency of Nanosecond Pulses by Swinging the Electric Field Vector Direction

Author:

Kim Vitalii1ORCID,Semenov Iurii1ORCID,Kiester Allen S.2,Keppler Mark A.3ORCID,Ibey Bennett L.2,Bixler Joel N.2ORCID,Colunga Biancatelli Ruben M. L.14ORCID,Pakhomov Andrei G.1ORCID

Affiliation:

1. Frank Reidy Research Center for Bioelectrics, Old Dominion University, Norfolk, VA 23508, USA

2. Bioeffects Division, Airman System Directorate, 711th Human Performance Wing, Air Force Research Laboratory, JBSA Fort Sam Houston, San Antonio, TX 78234, USA

3. SAIC, San Antonio, TX 78234, USA

4. Department of Physiological Sciences, Eastern Virginia Medical School, Norfolk, VA 23508, USA

Abstract

Reversing the pulse polarity, i.e., changing the electric field direction by 180°, inhibits electroporation and electrostimulation by nanosecond electric pulses (nsEPs). This feature, known as “bipolar cancellation,” enables selective remote targeting with nsEPs and reduces the neuromuscular side effects of ablation therapies. We analyzed the biophysical mechanisms and measured how cancellation weakens and is replaced by facilitation when nsEPs are applied from different directions at angles from 0 to 180°. Monolayers of endothelial cells were electroporated by a train of five pulses (600 ns) or five paired pulses (600 + 600 ns) applied at 1 Hz or 833 kHz. Reversing the electric field in the pairs (180° direction change) caused 2-fold (1 Hz) or 20-fold (833 kHz) weaker electroporation than the train of single nsEPs. Reducing the angle between pulse directions in the pairs weakened cancellation and replaced it with facilitation at angles <160° (1 Hz) and <130° (833 kHz). Facilitation plateaued at about three-fold stronger electroporation compared to single pulses at 90–100° angle for both nsEP frequencies. The profound dependence of the efficiency on the angle enables novel protocols for highly selective focal electroporation at one electrode in a three-electrode array while avoiding effects at the other electrodes. Nanosecond-resolution imaging of cell membrane potential was used to link the selectivity to charging kinetics by co- and counter-directional nsEPs.

Funder

National Eye Institute

Publisher

MDPI AG

Subject

Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Computer Science Applications,Spectroscopy,Molecular Biology,General Medicine,Catalysis

Reference37 articles.

1. Electrochemotherapy in head and neck cancer: A review of an emerging cancer treatment;Ralli;Oncol. Lett.,2018

2. Effects of high voltage nanosecond electric pulses on eukaryotic cells (in vitro): A systematic review;Rebersek;Bioelectrochemistry,2016

3. Nanosecond electric pulses: A mini-review of the present state of the art;Chopinet;Bioelectrochemistry,2015

4. Mechanisms of cell membrane electropermeabilization: A minireview of our present (lack of ?) knowledge;Teissie;Biochim. Biophys. Acta,2005

5. High-Frequency Irreversible Electroporation for Intracranial Meningioma: A Feasibility Study in a Spontaneous Canine Tumor Model;Latouche;Technol. Cancer Res. Treat.,2018

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