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Updated: Mar 1, 2026

Detection of Toxin Translocation into the Host Cytosol by Surface Plasmon Resonance
Published on: January 3, 2012
Clostridium difficile toxins A and B: Receptors, pores, and translocation into cells
Kathleen E Orrell1,2, Zhifen Zhang1,2, Seiji N Sugiman-Marangos1
1a Molecular Medicine Program , The Hospital for Sick Children Research Institute , Toronto , ON , Canada.
Abstract:
The most potent toxins secreted by pathogenic bacteria contain enzymatic moieties that must reach the cytosol of target cells to exert their full toxicity. Toxins such as anthrax, diphtheria, and botulinum toxin all use three well-defined functional domains to intoxicate cells: a receptor-binding moiety that triggers endocytosis into acidified vesicles by binding to a specific host-cell receptor, a translocation domain that forms pores across the endosomal membrane in response to acidic pH, and an enzyme that translocates through these pores to catalytically inactivate an essential host cytosolic substrate. The homologous toxins A (TcdA) and Toxin B (TcdB) secreted by Clostridium difficile are large enzyme-containing toxins that for many years have eluded characterization. The cell-surface receptors for these toxins, the non-classical nature of the pores that they form in membranes, and mechanism of translocation have remained undefined, exacerbated, in part, by the lack of any structural information for the central ∼1000 amino acid translocation domain. Recent advances in the identification of receptors for TcdB, high-resolution structural information for the translocation domain, and a model for the pore have begun to shed light on the mode-of-action of these toxins. Here, we will review TcdA/TcdB uptake and entry into mammalian cells, with focus on receptor binding, endocytosis, pore formation, and translocation. We will highlight how these toxins diverge from classical models of translocating toxins, and offer our perspective on key unanswered questions for TcdA/TcdB binding and entry into mammalian cells.
Insights
Clostridium difficile toxins A and B (TcdA/TcdB) enter cells via endocytosis and pore formation. Recent advances reveal their unique translocation mechanisms, differing from classical toxin models.
Area of Science:
- Molecular Biology
- Cellular Biology
- Microbiology
Background:
- Potent bacterial toxins require translocation of enzymatic moieties into host cell cytosol.
- Classical toxins like anthrax, diphtheria, and botulinum toxin utilize distinct domains for cell intoxication.
- Clostridium difficile toxins A and B (TcdA/TcdB) are large, complex toxins with poorly understood entry mechanisms.
Purpose of the Study:
- To review the uptake and entry mechanisms of TcdA/TcdB into mammalian cells.
- To focus on receptor binding, endocytosis, pore formation, and translocation processes.
- To highlight the divergence of TcdA/TcdB from classical translocating toxin models.
Main Methods:
- Review of recent advances in TcdB receptor identification.
- Analysis of high-resolution structural information for the TcdA/TcdB translocation domain.
- Examination of a proposed model for TcdA/TcdB pore formation.
Main Results:
- Identification of cell-surface receptors for TcdB has been achieved.
- High-resolution structures of the TcdA/TcdB translocation domain are now available.
- A model for TcdA/TcdB pore formation provides new insights into their mechanism.
Conclusions:
- Recent structural and mechanistic insights are clarifying TcdA/TcdB intoxication.
- TcdA/TcdB exhibit non-classical mechanisms for pore formation and translocation.
- Key questions remain regarding TcdA/TcdB binding and entry into mammalian cells.
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