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Whole-cell voltage clamp measurements of anthrax toxin pore current
Joshua T Wolfe1, Bryan A Krantz, G Jonah A Rainey
1Department of Microbiology and Molecular Genetics, Harvard Medical School, Boston, Massachusetts 02115, USA.
Abstract:
Protective antigen (PA) of anthrax toxin binds cellular receptors and forms pores in target cell membranes, through which catalytic lethal factor (LF) and edema factor (EF) are believed to translocate to the cytoplasm. Using patch clamp electrophysiological techniques, we assayed pore formation by PA in real time on the surface of cultured cells. The membranes of CHO-K1 cells treated with activated PA had little to no electrical conductivity at neutral pH (7.3) but exhibited robust mixed ionic currents in response to voltage stimuli at pH 5.3. Pore formation depended on specific cellular receptors and exhibited voltage-dependent inactivation at large potentials (>60 mV). The pH requirement for pore formation was receptor-specific as membrane insertion occurs at significantly different pH values when measured in cells specifically expressing tumor endothelial marker 8 (TEM8) or capillary morphogenesis protein 2 (CMG2), the two known cellular receptors for anthrax toxin. Pores were inhibited by an N-terminal fragment of LF and by micromolar concentrations of tetrabutylammonium ions. These studies demonstrated basic biophysical properties of PA pores in cell membranes and served as a foundation for the study of LF and EF translocation in vivo.
Insights
Anthrax toxin
Area of Science:
- Biophysics
- Molecular Biology
- Cell Biology
Background:
- Anthrax toxin's protective antigen (PA) facilitates lethal factor (LF) and edema factor (EF) entry into cells.
- PA binds cellular receptors, forming pores for LF and EF translocation.
Purpose of the Study:
- To investigate the biophysical properties of protective antigen (PA) pore formation in cell membranes.
- To characterize the real-time pore formation dynamics and pH-dependent behavior.
Main Methods:
- Utilized patch clamp electrophysiological techniques to monitor pore formation.
- Assayed pore activity on cultured CHO-K1 cells expressing specific anthrax toxin receptors.
Main Results:
- Protective antigen (PA) formed pH-dependent pores in cell membranes, active at acidic pH (5.3) but not neutral pH (7.3).
- Pore formation was receptor-specific, influenced by tumor endothelial marker 8 (TEM8) and capillary morphogenesis protein 2 (CMG2).
- Pore activity showed voltage-dependent inactivation and was inhibited by LF fragments and tetrabutylammonium ions.
Conclusions:
- Established fundamental biophysical characteristics of PA-mediated pores.
- Provided a basis for understanding LF and EF translocation mechanisms in anthrax infection.
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