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Updated: Aug 3, 2026

Detection of Toxin Translocation into the Host Cytosol by Surface Plasmon Resonance
Published on: January 3, 2012
Nanobodies against C. difficile TcdA and TcdB reveal unexpected neutralizing epitopes and provide a toolkit for toxin
Shannon L Kordus1, Heather K Kroh1, Rubén Cano Rodríguez1
1Department of Pathology, Microbiology, and Immunology, Vanderbilt University Medical Center, Nashville, Tennessee, United States of America.
Abstract:
Clostridioides difficile is a leading cause of antibiotic-associated diarrhea and nosocomial infection in the United States. The symptoms of C. difficile infection (CDI) are associated with the production of two homologous protein toxins, TcdA and TcdB. The toxins are considered bona fide targets for clinical diagnosis as well as the development of novel prevention and therapeutic strategies. While there are extensive studies that document these efforts, there are several gaps in knowledge that could benefit from the creation of new research tools. First, we now appreciate that while TcdA sequences are conserved, TcdB sequences can vary across the span of circulating clinical isolates. An understanding of the TcdA and TcdB epitopes that drive broadly neutralizing antibody responses could advance the effort to identify safe and effective toxin-protein chimeras and fragments for vaccine development. Further, an understanding of TcdA and TcdB concentration changes in vivo can guide research into how host and microbiome-focused interventions affect the virulence potential of C. difficile. We have developed a panel of alpaca-derived nanobodies that bind specific structural and functional domains of TcdA and TcdB. We note that many of the potent neutralizers of TcdA bind epitopes within the delivery domain, a finding that could reflect roles of the delivery domain in receptor binding and/or the conserved role of pore-formation in the delivery of the toxin enzyme domains to the cytosol. In contrast, neutralizing epitopes for TcdB were found in multiple domains. The nanobodies were also used for the creation of sandwich ELISA assays that allow for quantitation of TcdA and/or TcdB in vitro and in the cecal and fecal contents of infected mice. We anticipate these reagents and assays will allow researchers to monitor the dynamics of TcdA and TcdB production over time, and the impact of various experimental interventions on toxin production in vivo.
Insights
New nanobodies targeting Clostridioides difficile toxins A and B (TcdA and TcdB) enable better understanding of toxin function and development of diagnostics. These tools aid research into C. difficile infection (CDI) prevention and treatment strategies.
Area of Science:
- Microbiology
- Immunology
- Biotechnology
Background:
- Clostridioides difficile infection (CDI) is a major cause of antibiotic-associated diarrhea and hospital-acquired infections.
- CDI symptoms are linked to two toxins, TcdA and TcdB, which are key targets for diagnostics and therapeutics.
- Existing research has gaps in understanding toxin variability and in vivo dynamics, hindering vaccine and treatment development.
Purpose of the Study:
- To develop novel research tools for studying Clostridioides difficile toxins.
- To characterize neutralizing epitopes on TcdA and TcdB for vaccine development.
- To enable quantification of TcdA and TcdB in vivo to assess intervention impacts.
Main Methods:
- Generation of alpaca-derived nanobodies targeting specific domains of TcdA and TcdB.
- Identification of neutralizing epitopes on both toxins.
- Development of sandwich ELISA assays for toxin quantification.
Main Results:
- Nanobodies targeting TcdA delivery domain showed potent neutralization.
- Neutralizing epitopes for TcdB were identified across multiple domains.
- Developed ELISA assays successfully quantified TcdA and TcdB in vitro and in mouse models.
Conclusions:
- The developed nanobodies and ELISA assays are valuable tools for studying C. difficile toxin dynamics.
- These tools can advance research into CDI pathogenesis, prevention, and treatment.
- Understanding toxin epitopes and in vivo concentrations is crucial for developing effective interventions.
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