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February 5, 2026Molecules1 citationsOpen Access

De Novo Generation-Based Design of Potential Computational Hits Targeting the GluN1-GluN2A Receptor

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YLY.-Z. LiuZYZhijiang YangYGYixuan Guo

Key Points

  • The aim is to develop novel drug candidates targeting the GluN1-GluN2A receptor for CNS disorders.
  • Used (S)-ketamine and GluN1-GluN2A complex for drug design.
  • Employed the DrugFlow platform for de novo drug design.
  • Conducted molecular docking-based virtual screening combined with MD simulations.
  • Calculated binding free energy (∆Gbinding) for compounds.
  • Performed electrophysiological recordings to assess inhibition effects.
  • Identified three promising compounds with ∆Gbinding values below -18.98 kcal/mol.
  • Compounds demonstrated stronger binding affinity compared to (S)-ketamine.
  • Stable receptor binding confirmed via 200-ns MD simulations.
  • Electrophysiological recordings showed concentration-dependent inhibition of 24.26%, 35.36%, and 41.76% for Compounds A1, A2, and A3 respectively.

Abstract

Central nervous system (CNS) disorders such as depression severely impair human health. Targeted inhibition of the GluN1-GluN2A receptor is a promising therapeutic strategy, but current drugs often have adverse effects. To develop novel candidate drugs, this study utilized the (S)-ketamine and GluN1-GluN2A receptor complex as a structural template and conducted de novo drug design with the DrugFlow platform. An integrated strategy of molecular docking-based virtual screening combined with high-throughput binding free energy (∆Gbinding) calculations from large-scale molecular dynamics (MD) simulations identified three promising antagonists. The ∆Gbinding values of these compounds are all below −18.98 kcal/mol, indicating stronger binding affinity than (S)-ketamine, and they demonstrate promising drug-like properties and development potential. 200-ns MD simulations confirmed their stable receptor binding and mechanism consistent with (S)-ketamine. Electrophysiological recordings revealed that, at a concentration of 10 μM, Compounds A1, A2, and A3 produced concentration-dependent inhibition of GluN1-GluN2A receptor-mediated currents, with fractional inhibition values of 24.26%, 35.36%, and 41.76%, respectively. These findings demonstrate the compounds’ potential as CNS disorder therapeutics, requiring further experiments to validate efficacy and advance development for conditions like depression.

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Cite This Study

Liu et al. (2026) studied this question.

synapsesocial.com/papers/6984349af1d9ada3c1fb2ef0https://doi.org/10.3390/molecules31030522
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