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Paper on AI-Driven Discovery of Novel Chemical Scaffolds Published in ChemMedChem

2026.07.31

Integrative Molecular Scaffold Generation of PI3K/mTOR Inhibitors Using DeepSARM and Ligand-Based Virtual Screening Approaches

Publication
Published Date: 08 July 2026

Research results led by Chordia Therapeutics have been published in ChemMedChem.

Paper Summary
This study evaluated the effectiveness of AI-driven drug discovery technologies by using the PI3K/mTOR inhibitor samotolisib as a starting point. Researchers combined the AI-based molecular design platform DeepSARM with virtual screening to generate novel compounds. As a result, they successfully designed and synthesized compounds with novel chemical scaffolds that exhibit PI3Kα inhibitory activity, distinct from those of existing drugs. Furthermore, analysis using the AI-powered molecular modeling technology Boltz-2 suggested a rational binding mode between the compounds and the target protein. These findings demonstrate the potential of AI and computational science to efficiently generate novel chemical scaffolds for drug discovery.
Axcelead contributed to this research by evaluating the compounds through enzyme inhibition assays.

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