Desidustat's cardioprotective mechanisms in heart failure: a network pharmacology, molecular docking and dynamics

Mohammed Fayaz Sadiqbasha1, Arjun Gunasekaran1, Jeevak Chander Thirulokachandar1

  • 1Department of Pharmacy Practice, SRM College of Pharmacy, Faculty of Medicine and Health Sciences, SRM Institute of Science and Technology, Kattankulathur, Chengalpattu (DT), 603203, Tamil Nadu, India.

Scientific Reports
|April 7, 2026
PubMed

Insights

Desidustat may offer heart failure (HF) benefits by targeting metabolic and inflammatory pathways, particularly through HSP90AA1. This computational study suggests a new therapeutic approach for HF beyond current treatments.

Area of Science:

  • Cardiovascular Pharmacology
  • Computational Biology
  • Molecular Medicine

Background:

  • Heart failure (HF) poses a global health challenge, with current therapies not fully addressing its metabolic, oxidative, and inflammatory aspects.
  • Desidustat, a hypoxia-inducible factor prolyl hydroxylase inhibitor, shows promise beyond anemia treatment, with early preclinical cardiovascular evidence.
  • The precise mechanisms of Desidustat's cardioprotective effects in HF require further elucidation.

Purpose of the Study:

  • To generate a mechanistic hypothesis for Desidustat's cardioprotective effects in heart failure.
  • To identify molecular targets and pathways influenced by Desidustat using computational methods.
  • To explore Desidustat's potential as a complementary HF therapy by understanding its non-hemodynamic actions.

Main Methods:

  • Integrated computational approach: network pharmacology, molecular docking, and molecular dynamics (MD) simulations.
  • Identified 348 drug-disease shared targets, analyzed topological properties to find key hub genes (HSP90AA1, STAT3, ESR1).
  • Evaluated Desidustat-HSP90AA1 complex stability and binding thermodynamics using 200-ns MD simulations and MM-GBSA.

Main Results:

  • Topological analysis prioritized HSP90AA1, STAT3, and ESR1 as central targets, with favorable docking affinities for Desidustat.
  • Functional enrichment linked targets to HF-relevant processes: oxidative stress, angiogenesis, and apoptosis regulation.
  • MD simulations confirmed stable Desidustat-HSP90AA1 complex formation with a binding free energy of -75.10 ± 5.03 kcal/mol.

Conclusions:

  • Desidustat likely exerts cardioprotection via polypharmacology, modulating metabolic and inflammatory pathways through key targets like HSP90AA1.
  • This study provides a computational basis for Desidustat's potential as a complementary heart failure treatment.
  • Further experimental validation is warranted to confirm Desidustat's non-hemodynamic cardioprotective role in heart failure.

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