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Theoretical Evaluation of Voltage Inducement on Internal Membranes of Biological Cells Exposed to Electric Fields

Overview
Journal Biophys J
Publisher Cell Press
Specialty Biophysics
Date 2005 Oct 22
PMID 16239325
Citations 71
Authors
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Abstract

Several reports have recently been published on effects of very short and intense electric pulses on cellular organelles; in a number of cases, the cell plasma membrane appeared to be affected less than certain organelle membranes, whereas with longer and less intense pulses the opposite is the case. The effects are the consequence of the voltages induced on the membranes, and in this article we investigate the conditions under which the induced voltage on an organelle membrane could exceed its counterpart on the cell membrane. This would provide a possible explanation of the observed effects of very short pulses. Frequency-domain analysis yields an insight into the dependence of the voltage inducement on the electric and geometric parameters characterizing the cell and its vicinity. We show that at sufficiently high field frequencies, for a range of parameter values the voltage induced on the organelle membrane can indeed exceed the voltage induced on the cell membrane. Particularly, this can occur if the organelle interior is electrically more conductive than the cytosol, or if the organelle membrane has a lower dielectric permittivity than the cell membrane, and we discuss the plausibility of these conditions. Time-domain analysis is then used to determine the courses of the voltage induced on the membranes by pulses with risetimes and durations in the nanosecond range. The particularly high resting voltage in mitochondria, to which the induced voltage superimposes, could contribute to the explanation why these organelles are the primary target of many observed effects.

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References
1.
Kotnik T, Miklavcic D . Analytical description of transmembrane voltage induced by electric fields on spheroidal cells. Biophys J. 2000; 79(2):670-9. PMC: 1300967. DOI: 10.1016/S0006-3495(00)76325-9. View

2.
Chen N, Schoenbach K, Kolb J, Swanson R, Garner A, Yang J . Leukemic cell intracellular responses to nanosecond electric fields. Biochem Biophys Res Commun. 2004; 317(2):421-7. DOI: 10.1016/j.bbrc.2004.03.063. View

3.
Gimsa J, Wachner D . Analytical description of the transmembrane voltage induced on arbitrarily oriented ellipsoidal and cylindrical cells. Biophys J. 2001; 81(4):1888-96. PMC: 1301664. DOI: 10.1016/S0006-3495(01)75840-7. View

4.
Hall E, Schoenbach K, Beebe S . Nanosecond pulsed electric fields (nsPEF) induce direct electric field effects and biological effects on human colon carcinoma cells. DNA Cell Biol. 2005; 24(5):283-91. DOI: 10.1089/dna.2005.24.283. View

5.
Klosgen B, Reichle C, Kohlsmann S, Kramer K . Dielectric spectroscopy as a sensor of membrane headgroup mobility and hydration. Biophys J. 1996; 71(6):3251-60. PMC: 1233813. DOI: 10.1016/S0006-3495(96)79518-8. View