Rational discovery of dual-indication multi-target PDE/Kinase inhibitor for precision anti-cancer therapy using

Hansaim Lim1, Di He2, Yue Qiu3

  • 1Ph.D. Program in Biochemistry, The Graduate Center, The City University of New York, New York, New York, United States of America.

Insights

We introduce a new drug discovery strategy targeting multiple diseases and side effects simultaneously. Levosimendan shows promise as a multi-indication cancer therapy by inhibiting RIOK1 kinase.

Area of Science:

  • Pharmacology
  • Computational Biology
  • Drug Discovery

Background:

  • Complex diseases like cancer have multiple pathological manifestations and treatment side effects.
  • Current drug discovery paradigms (one-drug-one-gene) and polypharmacology struggle with multi-indication drug design.

Purpose of the Study:

  • Propose and validate a novel one-drug-multi-target-multi-indication drug discovery strategy.
  • Develop and apply a structural systems pharmacology platform (3D-REMAP) for predicting multi-indication therapeutics.
  • Repurpose existing drugs for dual-indication therapy, specifically for cancer and its associated side effects.

Main Methods:

  • Developed 3D-REMAP, a structural systems pharmacology platform integrating ligand binding site comparison and protein-ligand docking.
  • Augmented sparse chemical genomics data with 3D-REMAP for genome-scale chemical-protein interaction prediction using machine learning.
  • Validated predictions experimentally, including drug repurposing for dual-indication anti-cancer therapy.

Main Results:

  • 3D-REMAP significantly outperformed existing state-of-the-art methods in predicting chemical-protein interactions.
  • Identified levosimendan, a heart failure drug, as a potential inhibitor of RIOK1 and other kinases.
  • Confirmed levosimendan's anti-cancer activity against multiple cancers (e.g., lymphoma) via RIOK1 and RNA processing pathway inhibition.
  • Developed machine learning models to predict patient response to levosimendan.

Conclusions:

  • Levosimendan is a promising lead compound for developing safe, effective, and precise multi-indication anti-cancer therapies.
  • Structural systems pharmacology and the 3D-REMAP platform enable the design of polypharmacology for precision medicine.
  • This study pioneers a shift towards a one-drug-multi-target-multi-indication paradigm for complex diseases.

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