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Related Experiment Video

Updated: Aug 14, 2025

Evidence-based Knowledge Synthesis and Hypothesis Validation: Navigating Biomedical Knowledge Bases via Explainable AI and Agentic Systems
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Molecule generation toward target protein (SARS-CoV-2) using reinforcement learning-based graph neural network via

Amit Ranjan1,2, Hritik Kumar3,2, Deepshikha Kumari1,2

  • 1Department of Computer Science and Engineering, Indian Institute of Technology Patna, Bihta, Bihar 801106 India.

Network Modeling and Analysis in Health Informatics and Bioinformatics
|January 11, 2023
PubMed
Summary

This study introduces an AI framework for drug discovery, generating novel molecules with desired properties for SARS-CoV-2. The approach enhances drug-likeness and predicts binding affinity, accelerating therapeutic development.

Keywords:
Binding affinity predictionGraph neural networkKnowledge graphMolecule generationReinforcement learning

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Area of Science:

  • Computational Chemistry
  • Artificial Intelligence in Drug Discovery
  • Molecular Modeling

Background:

  • AI accelerates drug discovery by predicting molecule-protein binding affinity.
  • Generating novel drug candidates with desired properties (e.g., drug-likeness, target activity) while respecting chemical laws is a significant challenge.
  • Developing effective therapeutics against SARS-CoV-2 remains a critical area of research.

Purpose of the Study:

  • To develop a graph-based deep learning framework for generating novel therapeutic drug candidates targeting the SARS-CoV-2 protein.
  • To enhance molecular properties such as Quantitative Estimate of Drug-likeness (QED) and Dopamine Receptor D2 activity (DRD2).
  • To predict binding affinity scores for generated compounds against SARS-CoV-2 targets.

Main Methods:

  • A novel reinforcement learning (RL)-based graph generative module utilizing a gated graph neural network (GGNN) and a custom knowledge graph (KG).
  • A graph early fusion approach (GEFA) for predicting binding affinity between generated molecules and target proteins.
  • Fine-tuning the GGNN model within an RL environment to optimize molecular properties and using KG for efficient molecule screening.

Main Results:

  • The framework generated a significant number of valid and unique compounds with enhanced desired properties.
  • KG-based screening effectively reduced the search space of candidate molecules while retaining promising binders.
  • Achieved a high binding affinity score of 8.185 for a top-ranked generated compound against SARS-CoV-2 3C-like protease (3CLpro).

Conclusions:

  • The proposed AI framework successfully generates novel drug-like molecules with high binding affinity for SARS-CoV-2 targets.
  • The integration of RL, GGNN, KG, and GEFA offers a powerful approach for accelerating drug discovery and development.
  • The generated compounds show potential for further investigation as therapeutic agents against SARS-CoV-2.