Transmembrane distribution of lipophilic cations in response to an electrochemical potential in reconstituted cytochromec oxidase vesicles and in vesicles exhibiting a potassium ion diffusion potential
- 1 April 1994
- journal article
- Published by Springer Nature in Journal of Bioenergetics and Biomembranes
- Vol. 26 (2) , 221-230
- https://doi.org/10.1007/bf00763071
Abstract
It has been shown previously that biogenic amines and a number of pharmaceutical agents can redistribute across vesicle membranes in response to imposed potassium ion or proton gradients. Surprisingly, drug accumulation is observed for vesicles exhibiting either a pH gradient (interior acidic) or a membrane potential (interior negative), implying that these compounds can traverse the lipid bilayer as either the neutral or charged species. This interpretation, however, is complicated by the fact that vesicles exhibiting a membrane potential (interior negative) accumulate protons in response to this potential, thereby creating a pH gradient (interior acidic). This raises the possibility that in both vesicle systems drug redistribution occurs in response to the proton gradient present. We have therefore compared the uptake of several lipophilic cations by reconstituted cytochromec oxidase vesicles and by similar vesicles exhibiting a potassium ion diffusion potential. While turnover of the oxidase generates a membrane potential of comparable magnitude to the potassium ion diffusion system, it is associated with a proton gradient of opposite polarity (interior basic). Both systems show rapid uptake of the permanently charged lipophilic cation, tetraphenylphosphonium, but only the potassium ion diffusion system accumulates the lipophilic amines doxorubicin and propranolol. This provides compelling evidence that such weak bases redistribute only in response to pH gradients and not membrane potential.Keywords
This publication has 33 references indexed in Scilit:
- Dopamine accumulation in large unilamellar vesicle systems induced by transmembrane ion gradientsChemistry and Physics of Lipids, 1988
- Uptake of safranine and other lipophilic cations into model membrane systems in response to a membrane potentialBiochimica et Biophysica Acta (BBA) - Biomembranes, 1985
- NADH oxidation in submitochondrial particles protects respiratory chain activity against damage by adriamycin‐Fe3+European Journal of Biochemistry, 1983
- Destruction of Phosphilipids and Respiratory‐Chain Activity in Pig=Heart Submitochondrial Particles Induced by an Adriamycin‐Iron ComplexEuropean Journal of Biochemistry, 1983
- Pyranine (8-hydroxy-1,3,6-pyrenetrisulfonate) as a probe of internal aqueous hydrogen ion concentration in phospholipid vesiclesBiochemistry, 1981
- Estimation of transmembrane pH gradients from phase equilibriums of spin-labeled aminesBiochemistry, 1978
- The response of fluorescent amines to pH gradients across liposome membranesBiochimica et Biophysica Acta (BBA) - Biomembranes, 1972
- Conversion of biomembrane-produced energy into electric form. II. Intact mitochondriaBiochimica et Biophysica Acta (BBA) - Bioenergetics, 1970
- Amine Uncoupling of Energy Transfer in ChloroplastsPublished by Elsevier ,1967
- Microdetermination of PhosphorusAnalytical Chemistry, 1956