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

被引:76
作者
Gimsa, J [1 ]
Wachner, D [1 ]
机构
[1] Humboldt Univ, Inst Biol, D-10115 Berlin, Germany
关键词
D O I
10.1016/S0006-3495(99)76981-X
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
We present a new model for a variety of electric polarization effects on oblate and prolate homogeneous and single-shell spheroids. For homogeneous spheroids the model is identical to the Laplace model. For single-shell spheres of cell-like geometry the calculated difference of the induced dipole moments is in the thousandths range. To solve Laplace's equation for nonspherical single-shell objects it is necessary to assume a confocal shell, which results in different cell membrane properties in the pole and equator regions, respectively. Our alternative model addresses this drawback. It assumes that the disturbance of the external field due to polarization may project into the medium to a characteristic distance, the influential radius. This parameter is related to the axis ratio of the spheroid over the depolarizing factors and allows us to determine the geometry for a finite resistor-capacitor model. From this model the potential at the spheroid's surface is obtained and, consequently, the local field inside a homogeneous spheroid is determined. In the single-shell case, this is the effective local field of an equivalent homogeneous spheroid. Finally, integration over the volume yields the frequency-dependent induced dipole moment. The resistor-capacitor approach allowed us to find simple equations for the critical and characteristic frequencies, force plateaus and peak heights of deformation, dielectrophoresis and electrorotation for homogeneous and single-shell spheroids, and a more generalized equation for the induced transmembrane potential of spheroidal cells.
引用
收藏
页码:1316 / 1326
页数:11
相关论文
共 48 条
[11]  
FUHR G, 1985, STUD BIOPHYS, V108, P149
[12]   High-frequency electric field trapping of individual human spermatozoa [J].
Fuhr, G ;
Müller, T ;
Baukloh, V ;
Lucas, K .
HUMAN REPRODUCTION, 1998, 13 (01) :136-141
[13]  
Fuhr Guenter, 1996, P259
[14]   NUMERICAL-ANALYSIS OF THE INFLUENCE OF EXPERIMENTAL CONDITIONS ON THE ACCURACY OF DIELECTRIC PARAMETERS DERIVED FROM ELECTROROTATION MEASUREMENTS [J].
GASCOYNE, PRC ;
BECKER, FF ;
WANG, XB .
BIOELECTROCHEMISTRY AND BIOENERGETICS, 1995, 36 (02) :115-125
[15]   Low frequency electrorotation of fixed red blood cells [J].
Georgieva, R ;
Neu, B ;
Shilov, VM ;
Knippel, E ;
Budde, A ;
Latza, R ;
Donath, E ;
Kiesewetter, H ;
Bäumler, H .
BIOPHYSICAL JOURNAL, 1998, 74 (04) :2114-2120
[16]   A unified resistor-capacitor model for impedance, dielectrophoresis, electrorotation, and induced transmembrane potential [J].
Gimsa, J ;
Wachner, D .
BIOPHYSICAL JOURNAL, 1998, 75 (02) :1107-1116
[17]   Dielectric spectroscopy of single human erythrocytes at physiological ionic strength: Dispersion of the cytoplasm [J].
Gimsa, J ;
Muller, T ;
Schnelle, T ;
Fuhr, G .
BIOPHYSICAL JOURNAL, 1996, 71 (01) :495-506
[18]   Introducing phase analysis light scattering for dielectric characterization: Measurement of traveling-wave pumping [J].
Gimsa, J ;
Eppmann, P ;
Pruger, B .
BIOPHYSICAL JOURNAL, 1997, 73 (06) :3309-3316
[19]   New light-scattering and field-trapping methods access the internal electric structure of submicron particles, like influenza viruses [J].
Gimsa, J .
ELECTRICAL BIOIMPEDANCE METHODS: APPLICATIONS TO MEDICINE AND BIOTECHNOLOGY, 1999, 873 :287-298
[20]   DIELECTROPHORESIS AND ELECTROROTATION OF NEUROSPORA SLIME AND MURINE MYELOMA CELLS [J].
GIMSA, J ;
MARSZALEK, P ;
LOEWE, U ;
TSONG, TY .
BIOPHYSICAL JOURNAL, 1991, 60 (04) :749-760