Literature DB >> 26323571

Electrolytic Effects During Tissue Ablation by Electroporation.

Liel Rubinsky1, Enric Guenther1, Paul Mikus1, Michael Stehling2, Boris Rubinsky1.   

Abstract

Nonthermal irreversible electroporation is a new tissue ablation technique that consists of applying pulsed electric fields across cells to induce cell death by creating permanent defects in the cell membrane. Nonthermal irreversible electroporation is of interest because it allows treatment near sensitive tissue structures such as blood vessels and nerves. Two recent articles report that electrolytic reaction products at electrodes can be combined with electroporation pulses to augment and optimize tissue ablation. Those articles triggered a concern that the results of earlier studies on nonthermal irreversible electroporation may have been tainted by unaccounted for electrolytic effects. The goal of this study was to reexamine previous studies on nonthermal irreversible electroporation in the context of these articles. The study shows that the results from some of the earlier studies on nonthermal irreversible electroporation were affected by unaccounted for electrolysis, in particular the research with cells in cuvettes. It also shows that tissue ablation ascribed in the past to irreversible electroporation is actually caused by at least 3 different cytotoxic effects: irreversible electroporation without electrolysis, irreversible electroporation combined with electrolysis, and reversible electroporation combined with electrolysis. These different mechanisms may affect cell and tissue ablation in different ways, and the effects may depend on various clinical parameters such as the polarity of the electrodes, the charge delivered (voltage, number, and length of pulses), and the distance of the target tissue from the electrodes. Current clinical protocols employ ever-increasing numbers of electroporation pulses to values that are now an order of magnitude larger than those used in our first fundamental nonthermal irreversible electroporation studies in tissues. The different mechanisms of cell death, and the effect of the clinical parameters on the mechanisms may explain discrepancies between results of different clinical studies and should be taken into consideration in the design of optimal electroporation ablation protocols.
© The Author(s) 2015.

Keywords:  E2; IRE; NTIRE; NanoKnife; electrolysis; electrolytic electroporation; electroporation effects; irreversible electroporation; tissue ablation

Mesh:

Substances:

Year:  2015        PMID: 26323571     DOI: 10.1177/1533034615601549

Source DB:  PubMed          Journal:  Technol Cancer Res Treat        ISSN: 1533-0338


  21 in total

1.  Irreversible electroporation for the treatment of localized prostate cancer: a summary of imaging findings and treatment feedback.

Authors:  Matthijs J Scheltema; Arnoud W Postema; Daniel M de Bruin; Mara Buijs; Marc R Engelbrecht; M Pilar Laguna; Hessel Wijkstra; Theo M de Reijke; Jean J M C H de la Rosette
Journal:  Diagn Interv Radiol       Date:  2017 Sep-Oct       Impact factor: 2.630

2.  Using non-thermal irreversible electroporation to create an in vivo niche for exogenous cell engraftment.

Authors:  Tammy T Chang; Vivian X Zhou; Boris Rubinsky
Journal:  Biotechniques       Date:  2017-05-01       Impact factor: 1.993

3.  Normal and fibrotic liver parenchyma respond differently to irreversible electroporation.

Authors:  Chenang Lyu; Maya Lopez-Ichikawa; Boris Rubinsky; Tammy T Chang
Journal:  HPB (Oxford)       Date:  2019-03-14       Impact factor: 3.647

4.  Transfection by Electroporation of Cancer and Primary Cells Using Nanosecond and Microsecond Electric Fields.

Authors:  Eivina Radzevičiūtė; Veronika Malyško-Ptašinskė; Jurij Novickij; Vitalij Novickij; Irutė Girkontaitė
Journal:  Pharmaceutics       Date:  2022-06-11       Impact factor: 6.525

5.  Electrosensitization assists cell ablation by nanosecond pulsed electric field in 3D cultures.

Authors:  Claudia Muratori; Andrei G Pakhomov; Shu Xiao; Olga N Pakhomova
Journal:  Sci Rep       Date:  2016-03-18       Impact factor: 4.379

6.  Cryoelectrolysis-electrolytic processes in a frozen physiological saline medium.

Authors:  Franco Lugnani; Matteo Macchioro; Boris Rubinsky
Journal:  PeerJ       Date:  2017-01-17       Impact factor: 2.984

7.  Avoiding the side effects of electric current pulse application to electroporated cells in disposable small volume cuvettes assures good cell survival.

Authors:  Maciej Grys; Zbigniew Madeja; Włodzimierz Korohoda
Journal:  Cell Mol Biol Lett       Date:  2017-01-13       Impact factor: 5.787

8.  Membrane permeabilization of mammalian cells using bursts of high magnetic field pulses.

Authors:  Vitalij Novickij; Janja Dermol; Audrius Grainys; Matej Kranjc; Damijan Miklavčič
Journal:  PeerJ       Date:  2017-04-26       Impact factor: 2.984

9.  Simultaneous electroporation and dielectrophoresis in non-electrolytic micro/nano-electroporation.

Authors:  Chenang Lyu; Jianping Wang; Matthew Powell-Palm; Boris Rubinsky
Journal:  Sci Rep       Date:  2018-02-06       Impact factor: 4.379

10.  Ultrasonographic changes in the liver tumors as indicators of adequate tumor coverage with electric field for effective electrochemotherapy.

Authors:  Nina Boc; Ibrahim Edhemovic; Bor Kos; Maja M Music; Erik Brecelj; Blaz Trotovsek; Masa Bosnjak; Mihajlo Djokic; Damijan Miklavcic; Maja Cemazar; Gregor Sersa
Journal:  Radiol Oncol       Date:  2018-10-18       Impact factor: 2.991

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