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Updated: Apr 17, 2026

Detection of Toxin Translocation into the Host Cytosol by Surface Plasmon Resonance
Published on: January 3, 2012
[Molecular mechanism of AB5 toxin A-subunit translocation into the target cells]
Abstract:
AB5 toxins are pore-forming protein complexes, which destroy eukaryotic target cells inactivating essential enzyme complexes through protein ADP-ribosylation or glycosylation by enzymatically active A1 subunits. The B-subunit pentamer interacts with the target cell receptor, induces membrane pore formation, and initiates receptor-mediated endocytosis. In the present article, we propose a model of A1-subunit translocation in the form of a globular structure, as opposed to the generally accepted hypothesis of A-subunit unfolding in the acidic milieu of the endosome followed by its transport in the form of unfolded polypeptide and refolding in the cytoplasm. This model is based on physical-chemical processes and explains why an endosome, but not an exosome, is formed. A-subunit translocation into the cytosol is driven by the proton potential difference generated by K/Na- and H(+)-ATPases. After reduction of the disulphide bond between A1 and A2 fragments by intracellular enzymes, B-subunit returns back into the endosome, where they are destroyed by endosomal proteases, and the pore is closed. Endosome integrates into the cellular membrane, and membrane-bound enzymatic complexes (ATPases and others) return back to their initial position. The proposed model of receptor-mediated endocytosis is a universal molecular mechanism of translocation of effector toxin molecule subunits or any other proteins into the target cell, as well as of cell membrane reparation after any cell membrane injury by pore-forming complexes.
Insights
AB5 toxins use a globular A1 subunit model for cell entry, differing from unfolding hypotheses. This mechanism explains endosome formation and universal protein translocation across cell membranes.
Area of Science:
- Biochemistry
- Cell Biology
- Toxicology
Background:
- AB5 toxins are pore-forming protein complexes targeting eukaryotic cells.
- The B-subunit mediates receptor binding, pore formation, and endocytosis.
- Toxin activity involves ADP-ribosylation or glycosylation by the A1 subunit.
Purpose of the Study:
- To propose a novel model for A1-subunit translocation into target cells.
- To challenge the prevailing hypothesis of A-subunit unfolding in endosomes.
- To elucidate the physical-chemical basis of toxin entry and cell membrane repair.
Main Methods:
- Physical-chemical analysis of protein translocation.
- Investigation of proton potential-driven transport mechanisms.
- Examination of intracellular disulfide bond reduction and endosomal processing.
Main Results:
- A1 subunit translocation occurs as a globular structure, not unfolded polypeptide.
- Proton potential difference generated by ATPases drives A1 translocation.
- B-subunits are recycled into endosomes for degradation, and the cell membrane is repaired.
Conclusions:
- The globular translocation model explains endosome formation and toxin entry.
- This mechanism is a universal pathway for protein translocation and cell membrane repair.
- The model provides insights into receptor-mediated endocytosis and cellular defense.
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