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NMDA Receptor Mediated Mechanisms in the Post-Stroke Brain: From Physiology to Pathology

  • Han Gong
  • , Xiang Zheng Wang
  • , Dan Liu
  • , Wei Jin Liu
  • , Xiao Xia Du*
  • , Jia Sheng Rao*
  • *Corresponding author for this work
  • Beihang University
  • China Disabled Persons' Federation
  • China Rehabilitation Science Institute
  • University of Health and Rehabilitation Sciences
  • Wenzhou Medical University
  • Capital Medical University

Research output: Contribution to journalReview articlepeer-review

Abstract

N-methyl-D-aspartate receptors (NMDARs) play a context-dependent role in ischemic stroke (IS), contributing to acute excitotoxic injury while also supporting subsequent neuroplasticity. This functional divergence has constrained the therapeutic efficacy of non-selective NMDAR antagonists. During the acute phase, neuronal injury is associated with the redistribution of NMDARs toward extrasynaptic sites and the activation of aberrant non-ionotropic signaling pathways. As the disease progresses, NMDAR-dependent signaling becomes increasingly involved in activity-dependent plasticity, including motor engram consolidation, dendritic remodeling, and large-scale network reorganization. Post-stroke cognitive impairment and depression are increasingly recognized as potential consequences of sustained NMDAR dysregulation, involving interactions with immune signaling and metabolic processes. These observations support a shift toward activity-dependent modulation of NMDAR function, in which neurotoxic signaling is selectively dissociated from physiological receptor activity. Emerging strategies aimed at subunit-specific modulation and disruption of pathological receptor complexes provide a basis for more targeted intervention. Preservation of physiological excitation–inhibition balance may therefore represent a key requirement for optimizing functional recovery after stroke.

Original languageEnglish
Article number770
JournalBiomolecules
Volume16
Issue number6
DOIs
StatePublished - Jun 2026

Keywords

  • excitation-inhibition balance
  • excitotoxicity
  • ischemic stroke
  • neuroplasticity
  • neuroprotection
  • NMDA receptor
  • pathophysiology

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