Gregory D Ford, Christopher McGinley, Oluwafayokemi Oyolola, Oyinkansola Adeyemi, Monique C Surles-Zeigler, Shokofeh Rahimpour, Byron D Ford
Neuroinflammation is a coordinated response to central nervous system injury and disease involving resident glia, neurons, the neurovascular unit, and infiltrating immune cells. Although transient inflammatory signaling supports host defense, debris clearance, and repair, persistent activation contributes to synaptic dysfunction, demyelination, blood-brain barrier disruption, and neuronal loss. Neuregulin-1 (NRG1), a pleiotropic epidermal growth factor family ligand, has emerged as a potential regulator of this balance. Through ErbB receptor complexes, particularly ErbB4-containing dimers, NRG1 influences neural development, myelination, synaptic function, cell survival, and inflammatory signaling. Experimental evidence indicates that NRG1 can restrain NF-κB-dependent transcription, alter microglial activation states, enhance alpha7 nicotinic acetylcholine receptor-associated anti-inflammatory signaling, support oligodendroglial lineage cells, and stabilize neurovascular integrity. However, these actions are context-dependent; in spinal nociceptive circuits, ErbB2-linked signaling can promote microglial activation and pain hypersensitivity. This review examines NRG1 isoform biology, ErbB receptor architecture, cellular targets, and disease-specific evidence across demyelinating disease, stroke, traumatic brain injury, neurodegeneration, cerebral malaria, sickle cell disease, and neuropathic pain. Translation will require isoform-specific, receptor-biased, and anatomically targeted approaches supported by rigorous in vivo validation and verified biomarkers.