DocumentCode :
827039
Title :
Investigating membrane breakdown of neuronal cells exposed to nonuniform electric fields by finite-element modeling and experiments
Author :
Heida, Tjitske ; Wagenaar, Joost B M ; Rutten, Wim L C ; Marani, Enrico
Author_Institution :
Inst. of BioMedical Technol., Twente Univ., Enschede, Netherlands
Volume :
49
Issue :
10
fYear :
2002
Firstpage :
1195
Lastpage :
1203
Abstract :
High electric field strengths may induce high cell membrane potentials. At a certain breakdown level the membrane potential becomes constant due to the transition from an insulating state into a high conductivity and high permeability state. Pores are thought to be created through which molecules may be transported into and out of the cell interior. Membrane rupture may follow due to the expansion of pores or the creation of many small pores across a certain part of the membrane surface. In nonuniform electric fields, it is difficult to predict the electroporated membrane area. Therefore, in this study the induced membrane potential and the membrane area where this potential exceeds the breakdown level is investigated by finite-element modeling. Results from experiments in which the collapse of neuronal cells was detected were combined with the computed field strengths in order to investigate membrane breakdown and membrane rupture. It was found that in nonuniform fields membrane rupture is position dependent, especially at higher breakdown levels. This indicates that the size of the membrane site that is affected by electroporation determines rupture.
Keywords :
bioelectric potentials; biological effects of fields; biomembrane transport; cellular effects of radiation; electric field effects; finite element analysis; neurophysiology; permeability; physiological models; breakdown level; computed field strengths; electropermeabilization; electroporated membrane area prediction; electroporation; induced membrane potential; insulating state; membrane breakdown; membrane rupture; neuronal cells collapse; nonuniform electric fields; pores expansion; transported molecules; Biological cells; Biomedical engineering; Biomembranes; Cells (biology); Conductivity; Dielectrophoresis; Electric breakdown; Finite element methods; Frequency; Nonuniform electric fields; Anisotropy; Cell Membrane; Cell Membrane Permeability; Computer Simulation; Electric Conductivity; Electric Stimulation; Electromagnetic Fields; Electroporation; Finite Element Analysis; Lipid Bilayers; Membrane Potentials; Models, Neurological; Neurons; Radio Waves; Stress, Mechanical;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2002.803503
Filename :
1035970
Link To Document :
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