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dc.contributor.authorMurauskas, Arūnas
dc.contributor.authorStaigvila, Gediminas
dc.contributor.authorGirkontaitė, Irutė
dc.contributor.authorZinkevičienė, Auksė
dc.contributor.authorRuzgys, Paulius
dc.contributor.authorŠatkauskas, Saulius
dc.contributor.authorNovickij, Jurij
dc.contributor.authorNovickij, Vitalij
dc.date.accessioned2023-09-18T20:50:35Z
dc.date.available2023-09-18T20:50:35Z
dc.date.issued2020
dc.identifier.issn1536-8378
dc.identifier.urihttps://etalpykla.vilniustech.lt/handle/123456789/152864
dc.description.abstractMeasurement of cell transmembrane potential (TMP) is a complex methodology involving patch-clamp methods or fluorescence-based potentiometric markers, which have limited to no applicability during ultrafast charging and relaxation phenomena. In such a case, analytical methods are applied for evaluation of the voltage potential changes in biological cells. In this work, the TMP-based electrotransfer mechanism during ultra-high frequency (≥1 MHz) electric fields is studied and the phenomenon of rapid membrane charge accumulation, which is non-occurrent during conventional low-frequency electroporation is simulated using finite element method (FEM). The influence of extracellular medium conductivity (0.1, 1.5 S/m) and pulse rise/fall times (10–50 ns) TMP generation are presented. It is shown that the medium conductivity has a dramatic influence on the electroporation process in the high-frequency range of applied pulsed electric fields (PEF). The applied model allowed to grasp the differences in polarization between 100 and 900 ns PEF and enabled successful prediction of the experimental outcome of propidium iodide electrotransfer into CHO-K1 cells and the conductivity-dependent patterns of MHz range PEF-triggered electroporation were determined. The results of this study form recommendations for development and pre-evaluation of future PEF protocols and generators based on ultra-high frequency electroporation for anticancer and gene therapies.eng
dc.formatPDF
dc.format.extentp. 1-8
dc.format.mediumtekstas / txt
dc.language.isoeng
dc.relation.isreferencedbyEmbase
dc.relation.isreferencedbyCompendex
dc.relation.isreferencedbyINSPEC
dc.relation.isreferencedbyBiological Abstracts
dc.relation.isreferencedbyBIOSIS Previews
dc.relation.isreferencedbyScience Citation Index Expanded (Web of Science)
dc.rightsLaisvai prieinamas internete
dc.source.urihttps://doi.org/10.1080/15368378.2019.1710529
dc.source.urihttps://www.tandfonline.com/doi/abs/10.1080/15368378.2019.1710529?journalCode=iebm20
dc.source.urihttps://talpykla.elaba.lt/elaba-fedora/objects/elaba:56419648/datastreams/MAIN/content
dc.titlePredicting electrotransfer in ultra-high frequency sub-microsecond square wave electric fields
dc.typeStraipsnis Web of Science DB / Article in Web of Science DB
dcterms.references37
dc.type.pubtypeS1 - Straipsnis Web of Science DB / Web of Science DB article
dc.contributor.institutionVilniaus Gedimino technikos universitetas
dc.contributor.institutionValstybinis mokslinių tyrimų institutas Inovatyvios medicinos centras
dc.contributor.institutionVytauto Didžiojo universitetas
dc.contributor.facultyElektronikos fakultetas / Faculty of Electronics
dc.subject.researchfieldT 001 - Elektros ir elektronikos inžinerija / Electrical and electronic engineering
dc.subject.researchfieldN 010 - Biologija / Biology
dc.subject.researchfieldN 011 - Biofizika / Biophysics
dc.subject.vgtuprioritizedfieldsMC0404 - Bionika ir biomedicinos inžinerinės sistemos / Bionics and Biomedical Engineering Systems
dc.subject.ltspecializationsL105 - Sveikatos technologijos ir biotechnologijos / Health technologies and biotechnologies
dc.subject.enCHO-K1 cells
dc.subject.enelectric field
dc.subject.enfinite element method
dc.subject.enMHz
dcterms.sourcetitleElectromagnetic biology and medicine
dc.description.issueiss. 1
dc.description.volumevol. 39
dc.publisher.nameTaylor & Francis
dc.publisher.cityPhiladelphia
dc.identifier.doi000504625700001
dc.identifier.doi10.1080/15368378.2019.1710529
dc.identifier.elaba56419648


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