Conductometric and electrooptic relaxation spectrometry of lipid vesicle electroporation at high fields

被引:32
作者
Griese, T [1 ]
Kakorin, S [1 ]
Neumann, E [1 ]
机构
[1] Univ Bielefeld, Fac Chem, D-33501 Bielefeld, Germany
关键词
D O I
10.1039/b108193b
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Electrooptic and conductometric relaxation spectrometry of lipid unilamellar vesicles (Avanti 20) of radius a = 90 nm, filled with 0.2 M NaCl electrolyte, suspended in low conductive 0.33 M sucrose and 0.2 mM NaCl solution of vesicle number density rho(v) approximate to 2.4 x 10(-15) L-1 and exposed to a rectangular electric field pulse (up to E = 7.5 MV m(-1), pulse duration t(E) = 10 mus) has been used to quantify the structural changes involved in membrane electroporation (ME) and rapid membrane transport, sometimes also called electropermeation (MP), as well as extent and rate of shape deformations. The data are consistent with the formation of ion-conductive membrane pores contributing to conductance not only via the ionic vesicle interior but also by releasing intravesicular electrolyte through the pores during the electric pulse, dominantly by interactive electrodiffusion. The surface area fraction f(p) and the conductivity lambda(p) of the membrane pores increase with increasing field strength, 0 less than or equal to E/MV m(-1) less than or equal to 7.5, in the ranges 0 less than or equal to f(p) less than or equal to 1.4 x 10(-2) and 0 less than or equal to lambda(p)/S m(-1) less than or equal to 2.7 x 10(-3), respectively. The data analysis suggests that electrostatic interactions between the ions and the low dielectric pore wall are the origin of the very small values of the Nernst distribution coefficient, e. g. (gamma) over bar = 6.6 10 4 at E = 7.5 MVm(-1). The pore conductivity lambda(p) and (gamma) over bar are non-linear functions of the applied electric field, yielding a field-independent pore transport length l(p) = 0.56 nm. In summary, the new analytical proposal establishes quantitative relationships between structural electroporation quantities and characteristic parameters of the small ion transport or electropermeation.
引用
收藏
页码:1217 / 1227
页数:11
相关论文
共 39 条
[21]   BIOMEDICAL APPLICATIONS OF ELECTRIC PULSES WITH SPECIAL EMPHASIS ON ANTITUMOR ELECTROCHEMOTHERAPY [J].
MIR, LM ;
ORLOWSKI, S ;
BELEHRADEK, J ;
TEISSIE, J ;
ROLS, MP ;
SERSA, G ;
MIKLAVCIC, D ;
GILBERT, R ;
HELLER, R .
BIOELECTROCHEMISTRY AND BIOENERGETICS, 1995, 38 (01) :203-207
[22]   Mechanism of electroporative dye uptake by mouse B cells [J].
Neumann, E ;
Toensing, K ;
Kakorin, S ;
Budde, P ;
Frey, J .
BIOPHYSICAL JOURNAL, 1998, 74 (01) :98-108
[23]  
Neumann E, 1998, FARADAY DISCUSS, V111, P111
[24]   Calcium-mediated DNA adsorption to yeast cells and kinetics of cell transformation by electroporation [J].
Neumann, E ;
Kakorin, S ;
Tsoneva, I ;
Nikolova, B ;
Tomov, T .
BIOPHYSICAL JOURNAL, 1996, 71 (02) :868-877
[25]   Electroporation of curved lipid membranes in ionic strength gradients [J].
Neumann, E ;
Kakorin, S .
BIOPHYSICAL CHEMISTRY, 2000, 85 (2-3) :249-271
[26]   GENE-TRANSFER INTO MOUSE LYOMA CELLS BY ELECTROPORATION IN HIGH ELECTRIC-FIELDS [J].
NEUMANN, E ;
SCHAEFERRIDDER, M ;
WANG, Y ;
HOFSCHNEIDER, PH .
EMBO JOURNAL, 1982, 1 (07) :841-845
[27]   Electrooptics of membrane electroporation and vesicle shape deformation [J].
Neumann, E ;
Kakorin, S .
CURRENT OPINION IN COLLOID & INTERFACE SCIENCE, 1996, 1 (06) :790-799
[28]   Fundamentals of electroporative delivery of drugs and genes [J].
Neumann, E ;
Kakorin, S ;
Toensing, K .
BIOELECTROCHEMISTRY AND BIOENERGETICS, 1999, 48 (01) :3-16
[29]  
Neumann E, 2000, METH MOLEC MED, V37, P1, DOI 10.1385/1-59259-080-2:1
[30]   PERMEABILITY CHANGES INDUCED BY ELECTRIC IMPULSES IN VESICULAR MEMBRANES [J].
NEUMANN, E ;
ROSENHECK, K .
JOURNAL OF MEMBRANE BIOLOGY, 1972, 10 (3-4) :279-290