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.

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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