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Properties of the conductance induced in lecithin bilayer membranes by alamethicin.

Authors :
Roy, Guy
Source :
Journal of Membrane Biology; 1975, Vol. 24 Issue 1, p71-85, 15p
Publication Year :
1975

Abstract

Current-voltage relations have been measured across lecithin bilayers doped with alamethicin molecules. The results show that there are two aspects of the induced conductances, a voltage-dependent and a voltage-independent conductance. Both have been characterized as a function of alamethicin and KCl concentration. The two aspects of the conductances do not show the same changes with those two variables. The voltage-independent conductance is affected very little by changes in KCl concentration, and its dependance on alamethicin concentration reveals that it is produced by two or three alamethicin molecules. The voltage-dependent conductance is shifted by the changes in KCl concentration only when the concentrations are ≧ 100 mm; below 100 mm KCl the slope of the log conductance-voltage curve is also reduced. The effect of changing alamethicin concentration reveals that nine or ten molecules are involved for KCl concentrations larger than 100 mm; if the KCl concentration is less than 100 mm, the effect of changing the alamethicin concentration is reduced. Time-dependent measurements have also been performed; only one time constant was found and it is strongly voltage-dependent. Also a very slow voltage-dependent absorption process is found. These results can be explained if it is assumed that pores are formed of a mixture of charged and uncharged alamethicin molecules when a voltage is applied and that uncharged alamethicin can also form pores without applying a voltage, once the absorption process has been started by previously applied voltages. The voltage dependence of the time constant seems to indicate that the voltage-dependent pore formation is produced by aggregates of charged alamethicin rather than independent molecules. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00222631
Volume :
24
Issue :
1
Database :
Complementary Index
Journal :
Journal of Membrane Biology
Publication Type :
Academic Journal
Accession number :
71231227
Full Text :
https://doi.org/10.1007/BF01868616