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Updated: May 27, 2026

Detection of Toxin Translocation into the Host Cytosol by Surface Plasmon Resonance
Published on: January 3, 2012
Arf6-dependent intracellular trafficking of Pasteurella multocida toxin and pH-dependent translocation from late
Tana L Repella1, Mengfei Ho, Tracy P M Chong
1Department of Microbiology, University of Illinois at Urbana-Champaign, 601 South Goodwin Avenue, Urbana, IL 61801, USA. repella@illinois.edu
Abstract:
The potent mitogenic toxin from Pasteurella multocida (PMT) is the major virulence factor associated with a number of epizootic and zoonotic diseases caused by infection with this respiratory pathogen. PMT is a glutamine-specific protein deamidase that acts on its intracellular G-protein targets to increase intracellular calcium, cytoskeletal, and mitogenic signaling. PMT enters cells through receptor-mediated endocytosis and then translocates into the cytosol through a pH-dependent process that is inhibited by NH(4)Cl or bafilomycin A1. However, the detailed mechanisms that govern cellular entry, trafficking, and translocation of PMT remain unclear. Co-localization studies described herein revealed that while PMT shares an initial entry pathway with transferrin (Tfn) and cholera toxin (CT), the trafficking pathways of Tfn, CT, and PMT subsequently diverge, as Tfn is trafficked to recycling endosomes, CT is trafficked retrograde to the ER, and PMT is trafficked to late endosomes. Our studies implicate the small regulatory GTPase Arf6 in the endocytic trafficking of PMT. Translocation of PMT from the endocytic vesicle occurs through a pH-dependent process that is also dependent on both microtubule and actin dynamics, as evidenced by inhibition of PMT activity in our SRE-based reporter assay, with nocodazole and cytochalasin D, respectively, suggesting that membrane translocation and cytotoxicity of PMT is dependent on its transfer to late endosomal compartments. In contrast, disruption of Golgi-ER trafficking with brefeldin A increased PMT activity, suggesting that inhibiting PMT trafficking to non-productive compartments that do not lead to translocation, while promoting formation of an acidic tubulovesicle system more conducive to translocation, enhances PMT translocation and activity.
Insights
Pasteurella multocida toxin (PMT) enters cells and traffics to late endosomes, requiring pH and cytoskeletal dynamics for translocation into the cytosol. Arf6 GTPase regulates this process, impacting virulence.
Area of Science:
- Microbiology
- Cell Biology
- Toxicology
Background:
- Pasteurella multocida toxin (PMT) is a key virulence factor causing significant animal and human diseases.
- PMT functions as a glutamine-specific protein deamidase, disrupting host cell signaling pathways.
- Understanding PMT's cellular entry, trafficking, and translocation mechanisms is crucial for disease control.
Purpose of the Study:
- To elucidate the cellular entry, endocytic trafficking, and translocation mechanisms of PMT.
- To identify host factors and cellular processes involved in PMT's intracellular journey.
- To investigate the role of Arf6 GTPase in PMT trafficking and activity.
Main Methods:
- Co-localization studies to track PMT entry and trafficking pathways.
- Inhibition assays using NH(4)Cl, bafilomycin A1, nocodazole, cytochalasin D, and brefeldin A.
- SRE-based reporter assay to measure PMT activity.
Main Results:
- PMT shares an initial endocytic pathway with transferrin and cholera toxin but diverges to late endosomes.
- PMT translocation into the cytosol is pH-dependent and requires microtubule and actin dynamics.
- The small GTPase Arf6 is implicated in PMT's endocytic trafficking.
- Disruption of Golgi-ER trafficking enhanced PMT activity, suggesting a role for acidic tubulovesicular systems.
Conclusions:
- PMT's journey to late endosomes is critical for its translocation and subsequent cytotoxicity.
- Cellular entry and translocation of PMT are complex processes regulated by host cell machinery.
- Targeting PMT trafficking pathways could offer novel therapeutic strategies against PMT-associated diseases.
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