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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
Identification of inhibitors against the potential ligandable sites in the active cholera toxin
Aditi Gangopadhyay1, Abhijit Datta2
1DBT Centre for Bioinformatics, Presidency University, 86/1 College Street, Kolkata - 700073, India.
Abstract:
The active cholera toxin responsible for the massive loss of water and ions in cholera patients via its ADP ribosylation activity is a heterodimer of the A1 subunit of the bacterial holotoxin and the human cytosolic ARF6 (ADP Ribosylation Factor 6). The active toxin is a potential target for the design of inhibitors against cholera. In this study we identified the potential ligandable sites of the active cholera toxin which can serve as binding sites for drug-like molecules. By employing an energy-based approach to identify ligand binding sites, and comparison with the results of computational solvent mapping, we identified two potential ligandable sites in the active toxin which can be targeted during structure-based drug design against cholera. Based on the probe affinities of the identified ligandable regions, docking-based virtual screening was employed to identify probable inhibitors against these sites. Several indole-based alkaloids and phosphates showed strong interactions to the important residues of the ligandable region at the A1 active site. On the other hand, 26 top scoring hits were identified against the ligandable region at the A1 ARF6 interface which showed strong hydrogen bonding interactions, including guanidines, phosphates, Leucopterin and Aristolochic acid VIa. This study has important implications in the application of hybrid structure-based and ligand-based methods against the identified ligandable sites using the identified inhibitors as reference ligands, for drug design against the active cholera toxin.
Insights
Researchers identified key binding sites on the active cholera toxin, a target for new cholera treatments. This discovery aids in designing drugs to inhibit the toxin
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- Cholera toxin's ADP ribosylation activity causes severe water and ion loss.
- The active toxin is a heterodimer of the bacterial A1 subunit and human ARF6.
- Targeting this active toxin is crucial for developing cholera inhibitors.
Purpose of the Study:
- To identify potential ligandable sites on the active cholera toxin for drug design.
- To discover drug-like molecules that can inhibit the toxin's activity.
- To explore structure-based and ligand-based drug design strategies against cholera.
Main Methods:
- Employed an energy-based approach and computational solvent mapping to find ligand binding sites.
- Utilized docking-based virtual screening to identify potential inhibitors.
- Analyzed probe affinities and interactions with key residues.
Main Results:
- Identified two potential ligandable sites on the active cholera toxin.
- Found indole-based alkaloids and phosphates interacting strongly with the A1 active site.
- Discovered 26 top-scoring inhibitors, including guanidines and phosphates, at the A1 ARF6 interface.
Conclusions:
- The identified ligandable sites are promising targets for structure-based drug design.
- The discovered inhibitors can serve as reference ligands for developing new cholera therapies.
- Hybrid structure- and ligand-based methods offer a viable approach for cholera drug discovery.
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