The effect of electrical deformation forces on the electropermeabilization of erythrocyte membranes in low- and high-conductivity media

被引:115
作者
Sukhorukov, VL [1 ]
Mussauer, H [1 ]
Zimmermann, U [1 ]
机构
[1] Univ Wurzburg, Lehrstuhl Biotechnol, D-97074 Wurzburg, Germany
关键词
erythrocytes; medium conductivity; electropermeabilization; electrodeformation; electrorotation;
D O I
10.1007/s002329900387
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Electrical breakdown of erythrocytes induces hemoglobin release which increases markedly with decreasing conductivity of the pulse medium. This effect presumably results from the transient, conductivity-dependent deformation forces (elongation or compression) on the cell caused by Maxwell stress. The deformation force is exerted on the plasma membrane of the cell, which can be viewed as a transient dipole induced by an applied DC electric field pulse. The induced dipole arises from the free charges that accumulate at the cell interfaces via the Maxwell-Wagner polarization mechanism. The polarization response of erythrocytes to a DC field pulse was estimated from the experimental data obtained by using two complementary frequency-domain techniques. The response is very rapid, due to the highly conductive cytosol. Measurements of the electrorotation and electrodeformation spectra over a wide conductivity range yielded the information and data required for the calculation of the deformation force as a function of frequency and external conductivity and for the calculation of the transient development of the deformation forces during the application of a DC-field pulse. These calculations showed that (i) electric force precedes and accompanies membrane charging (up to the breakdown voltage) and (ii) that under low-conductivity conditions, the electric stretching force contributes significantly to the enlargement of "electroleaks" in the plasma membrane generated by electric breakdown.
引用
收藏
页码:235 / 245
页数:11
相关论文
共 39 条
[1]  
ARNOLD WM, 1982, Z NATURFORSCH C, V37, P908
[2]   ELECTRO-ROTATION - DEVELOPMENT OF A TECHNIQUE FOR DIELECTRIC MEASUREMENTS ON INDIVIDUAL CELLS AND PARTICLES [J].
ARNOLD, WM ;
ZIMMERMANN, U .
JOURNAL OF ELECTROSTATICS, 1988, 21 (2-3) :151-191
[3]   SEPARATION OF HUMAN BREAST-CANCER CELLS FROM BLOOD BY DIFFERENTIAL DIELECTRIC AFFINITY [J].
BECKER, FF ;
WANG, XB ;
HUANG, Y ;
PETHIG, R ;
VYKOUKAL, J ;
GASCOYNE, PRC .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1995, 92 (03) :860-864
[4]   DEFORMATION AND FLOW OF RED-BLOOD-CELLS IN A SYNTHETIC LATTICE - EVIDENCE FOR AN ACTIVE CYTOSKELETON [J].
BRODY, JP ;
HAN, YQ ;
AUSTIN, RH ;
BITENSKY, M .
BIOPHYSICAL JOURNAL, 1995, 68 (06) :2224-2232
[5]   ELECTROMECHANICAL STRESSES PRODUCED IN THE PLASMA-MEMBRANES OF SUSPENDED CELLS BY APPLIED ELECTRIC-FIELDS [J].
BRYANT, G ;
WOLFE, J .
JOURNAL OF MEMBRANE BIOLOGY, 1987, 96 (02) :129-139
[6]   Effect of medium conductivity and composition on the uptake of propidium iodide into electropermeabilized myeloma cells [J].
Djuzenova, CS ;
Zimmermann, U ;
Frank, H ;
Sukhorukov, VL ;
Richter, E ;
Fuhr, G .
BIOCHIMICA ET BIOPHYSICA ACTA-BIOMEMBRANES, 1996, 1284 (02) :143-152
[7]  
DOETSCH G, 1967, ANLEITUNG PRAKTISCHE
[8]   VISCOELASTIC PROPERTIES OF ERYTHROCYTE-MEMBRANES IN HIGH-FREQUENCY ELECTRIC-FIELDS [J].
ENGELHARDT, H ;
GAUB, H ;
SACKMANN, E .
NATURE, 1984, 307 (5949) :378-380
[9]   ON THE MEASUREMENT OF SHEAR ELASTIC-MODULI AND VISCOSITIES OF ERYTHROCYTE PLASMA-MEMBRANES BY TRANSIENT DEFORMATION IN HIGH-FREQUENCY ELECTRIC-FIELDS [J].
ENGELHARDT, H ;
SACKMANN, E .
BIOPHYSICAL JOURNAL, 1988, 54 (03) :495-508
[10]   LOW-FREQUENCY ELECTRIC-FIELD INDUCED CHANGES IN SHAPE AND MOTILITY OF AMEBAS [J].
FRIEND, AW ;
FINCH, ED ;
SCHWAN, HP .
SCIENCE, 1975, 187 (4174) :357-359