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Updated: Feb 11, 2026

Fabrication and Visualization of Capillary Bridges in Slit Pore Geometry
Published on: January 9, 2014
Self-homodimerization of an actinoporin by disulfide bridging reveals implications for their structure and pore
Aisel Valle1,2, Luis Benito Pérez-Socas3, Liem Canet3
1Laboratory of Molecular Biophysics, Institute of Biological Sciences, University of Brasília (IB-CEL/UnB), Campus Darcy Ribeiro, Asa Norte, Brasília, DF-70910-900, Brazil. aiselvalle@gmail.com.
Abstract:
The Trp111 to Cys mutant of sticholysin I, an actinoporin from Stichodactyla helianthus sea anemone, forms a homodimer via a disulfide bridge. The purified dimer is 193 times less hemolytic than the monomer. Ultracentrifugation, dynamic light scattering and size-exclusion chromatography demonstrate that monomers and dimers are the only independent oligomeric states encountered. Indeed, circular dichroism and fluorescence spectroscopies showed that Trp/Tyr residues participate in homodimerization and that the dimer is less thermostable than the monomer. A homodimer three-dimensional model was constructed and indicates that Trp147/Tyr137 are at the homodimer interface. Spectroscopy results validated the 3D-model and assigned 85° to the disulfide bridge dihedral angle responsible for dimerization. The homodimer model suggests that alterations in the membrane/carbohydrate-binding sites in one of the monomers, as result of dimerization, could explain the decrease in the homodimer ability to form pores.
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