Literature DB >> 10920001

Analytical description of transmembrane voltage induced by electric fields on spheroidal cells.

T Kotnik1, D Miklavcic.   

Abstract

An analytical description of transmembrane voltage induced on spherical cells was determined in the 1950s, and the tools for numerical assessment of transmembrane voltage induced on spheroidal cells were developed in the 1970s. However, it has often been claimed that an analytical description is unattainable for spheroidal cells, while others have asserted that even if attainable, it does not befit the reality due to the nonuniform membrane thickness, which is unrealistic but inevitable in spheroidal geometry. In this paper we show that for all spheroidal cells, membrane thickness is irrelevant to the induced transmembrane voltage under the assumption of a nonconductive membrane, which was also applied in the derivation of Schwan's equation. We then derive the analytical description of transmembrane voltage induced on prolate and oblate spheroidal cells. The final result, which we cast from spheroidal into more familiar spherical coordinates, represents a generalization of Schwan's equation to all spheroidal cells (of which spherical cells are a special case). The obtained expression is easy to apply, and we give a simple example of such application. We conclude the study by analyzing the variation of induced transmembrane voltage as a spheroidal cell is stretched by the field, performing one study at a constant membrane surface area, and another at a constant cell volume.

Mesh:

Year:  2000        PMID: 10920001      PMCID: PMC1300967          DOI: 10.1016/S0006-3495(00)76325-9

Source DB:  PubMed          Journal:  Biophys J        ISSN: 0006-3495            Impact factor:   4.033


  10 in total

1.  A polarization model overcoming the geometric restrictions of the laplace solution for spheroidal cells: obtaining new equations for field-induced forces and transmembrane potential.

Authors:  J Gimsa; D Wachner
Journal:  Biophys J       Date:  1999-09       Impact factor: 4.033

Review 2.  Fundamentals of electroporative delivery of drugs and genes.

Authors:  E Neumann; S Kakorin; K Toensing
Journal:  Bioelectrochem Bioenerg       Date:  1999-02

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Authors:  R P RAND
Journal:  Biophys J       Date:  1964-07       Impact factor: 4.033

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Authors:  H P SCHWAN
Journal:  Adv Biol Med Phys       Date:  1957

5.  Cellular membrane potentials induced by alternating fields.

Authors:  C Grosse; H P Schwan
Journal:  Biophys J       Date:  1992-12       Impact factor: 4.033

6.  Stimulation of spheroidal cells--the role of cell shape.

Authors:  M Klee; R Plonsey
Journal:  IEEE Trans Biomed Eng       Date:  1976-07       Impact factor: 4.538

7.  Potential distribution for a spheroidal cell having a conductive membrane in an electric field.

Authors:  R A Jerry; A S Popel; W E Brownell
Journal:  IEEE Trans Biomed Eng       Date:  1996-09       Impact factor: 4.538

8.  Finite difference solution for biopotentials of axially symmetric cells.

Authors:  M Klee; R Plonsey
Journal:  Biophys J       Date:  1972-12       Impact factor: 4.033

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Authors:  J Bernhardt; H Pauly
Journal:  Biophysik       Date:  1973

10.  Electromechanical stresses produced in the plasma membranes of suspended cells by applied electric fields.

Authors:  G Bryant; J Wolfe
Journal:  J Membr Biol       Date:  1987       Impact factor: 1.843

  10 in total
  44 in total

1.  Analytical description of the transmembrane voltage induced on arbitrarily oriented ellipsoidal and cylindrical cells.

Authors:  J Gimsa; D Wachner
Journal:  Biophys J       Date:  2001-10       Impact factor: 4.033

2.  Effect of electric field induced transmembrane potential on spheroidal cells: theory and experiment.

Authors:  Blaz Valic; Muriel Golzio; Mojca Pavlin; Anne Schatz; Cecile Faurie; Bruno Gabriel; Justin Teissié; Marie-Pierre Rols; Damijan Miklavcic
Journal:  Eur Biophys J       Date:  2003-04-24       Impact factor: 1.733

3.  Dielectrophoretic microfluidic device for the continuous sorting of Escherichia coli from blood cells.

Authors:  Robert Steven Kuczenski; Hsueh-Chia Chang; Alexander Revzin
Journal:  Biomicrofluidics       Date:  2011-09-20       Impact factor: 2.800

Review 4.  Induced transmembrane voltage and its correlation with electroporation-mediated molecular transport.

Authors:  Tadej Kotnik; Gorazd Pucihar; Damijan Miklavcic
Journal:  J Membr Biol       Date:  2010-07-09       Impact factor: 1.843

5.  Efficient transfection of dissociated mouse chromaffin cells using small-volume electroporation.

Authors:  Widmann W Hoerauf; Victor A Cazares; Arasakumar Subramani; Edward L Stuenkel
Journal:  Cytotechnology       Date:  2014-02-19       Impact factor: 2.058

6.  Theoretical evaluation of voltage inducement on internal membranes of biological cells exposed to electric fields.

Authors:  Tadej Kotnik; Damijan Miklavcic
Journal:  Biophys J       Date:  2005-10-20       Impact factor: 4.033

7.  Hybrid finite element method for describing the electrical response of biological cells to applied fields.

Authors:  Wenjun Ying; Craig S Henriquez
Journal:  IEEE Trans Biomed Eng       Date:  2007-04       Impact factor: 4.538

8.  Numerical calculations of single-cell electroporation with an electrolyte-filled capillary.

Authors:  Imants Zudans; Aparna Agarwal; Owe Orwar; Stephen G Weber
Journal:  Biophys J       Date:  2007-03-09       Impact factor: 4.033

9.  Mechanic stress generated by a time-varying electromagnetic field on bone surface.

Authors:  Hui Ye
Journal:  Med Biol Eng Comput       Date:  2018-03-19       Impact factor: 2.602

Review 10.  Animal models of transcranial direct current stimulation: Methods and mechanisms.

Authors:  Mark P Jackson; Asif Rahman; Belen Lafon; Gregory Kronberg; Doris Ling; Lucas C Parra; Marom Bikson
Journal:  Clin Neurophysiol       Date:  2016-09-10       Impact factor: 3.708

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