Pore formation by the sea anemone cytolysin equinatoxin II in red blood cells and model lipid membranes
- 1 January 1993
- journal article
- Published by Springer Nature in The Journal of Membrane Biology
- Vol. 131 (1) , 11-22
- https://doi.org/10.1007/bf02258530
Abstract
The interaction ofActinia equina equinatoxin II (EqT-II) with human red blood cells (HRBC) and with model lipid membranes was studied. It was found that HRBC hemolysis by EqT-II is the result of a colloid-osmotic shock caused by the opening of toxin-induced ionic pores. In fact, hemolysis can be prevented by osmotic protectants of adequate size. The functional radius of the lesion was estimated to be about 1.1 nm. EqT-II increased also the permeability of calcein-loaded lipid vesicles comprised of different phospholipids. The rate of permeabilization rised when sphingomyelin was introduced into the vesicles, but it was also a function of the pH of the medium, optimum activity being between pH 8 and 9; at pH 10 the toxin became markedly less potent. From the dose-dependence of the permeabilization it was inferred that EqT-II increases membrane permeability by forming oligomeric channels comprising several copies of the cytolysin monomer. The existence of such oligomers was directly demonstrated by chemical cross-linking. Addition of EqT-II to one side of a planar lipid membrane (PLM) increases the conductivity of the film in discrete steps of defined amplitude indicating the formation of cation-selective channels. The conductance of the channel is consistent with the estimated size of the lesion formed in HRBC. High pH and sphingomyelin promoted the interaction even in this system. Chemical modification of lysine residues or carboxyl groups of this protein changed the conductance, the ion selectivity and the current-voltage characteristic of the pore, suggesting that both these groups were present in its lumen.Keywords
This publication has 57 references indexed in Scilit:
- The role of lysine, histidine and carboxyl residues in biological activity of equinatoxin II, a pore forming polypeptide from the sea anemone Actinia equina L.Biochimica et Biophysica Acta (BBA) - Protein Structure and Molecular Enzymology, 1992
- Modification of lysine residues ofStaphylococcus aureus α-toxin: Effects on its channel-forming propertiesThe Journal of Membrane Biology, 1991
- Chemical modification ofStaphylococcus aureus α-toxin by diethylpyrocarbonate: Role of histidines in its membrane-damaging propertiesThe Journal of Membrane Biology, 1991
- Cytotoxicity of equinatoxin II from the sea anemoneActinia equina involves ion channel formation and an increase in intracellular calcium activityThe Journal of Membrane Biology, 1990
- Biophysical analysis of novel transport pathways induced in red blood cell membranesThe Journal of Membrane Biology, 1987
- Interactions between membranes and cytolytic peptidesBiochimica et Biophysica Acta (BBA) - Reviews on Biomembranes, 1986
- Ion and nonelectrolyte permeability properties of channels formed in planar lipid bilayer membranes by the cytolytic toxin from the sea anemone,Stoichactis helianthusThe Journal of Membrane Biology, 1980
- Counting integral numbers of amino groups per polypeptide chainFEBS Letters, 1980
- Analysis of the multi-pore system of alamethicin in a lipid membraneThe Journal of Membrane Biology, 1978
- Cleavage of Structural Proteins during the Assembly of the Head of Bacteriophage T4Nature, 1970