[Molecular mechanism of AB5 toxin A-subunit translocation into the target cells]

Bioorganicheskaia Khimiia
|February 21, 2015
PubMed

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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