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February 13, 2026Journal of Clinical Investigation1 citationsOpen Access

Neutrophil-microglia interaction drives motor dysfunction in neuromyelitis optica model induced by subarachnoid AQP4-IgG

FQFangfang QiMayo ClinicVLVanda A. LennonSZShunyi ZhaoMayo Clinic

Key Points

  • Investigate the mechanisms of neutrophil and microglial interaction and their roles in motor dysfunction in a neuromyelitis optica model.
  • Infused AQP4-IgG into the spinal subarachnoid space of mice.
  • Monitored neutrophil infiltration and microglial activation.
  • Utilized two-photon and electron microscopy for structural analysis.
  • Performed pharmacological inhibition of C5aR1 in the model.
  • Conducted immunohistochemical analysis on an NMO patient's spinal cord.
  • Neutrophil infiltration was observed alongside microglial activation leading to motor impairment.
  • Motor dysfunction was reversible upon stopping AQP4-IgG infusion.
  • Ablation of neutrophils or microglia reduced motor deficits.
  • Mice lacking C5aR1 showed decreased neutrophil infiltration and motor dysfunction.
  • C5aR1 inhibition mimicked protective effects seen in knockout mice.

Abstract

Neutrophils and neutrophil extracellular traps (NETs) contribute to early neuromyelitis optica (NMO) histopathology initiated by IgG targeting astrocytic aquaporin-4 water (AQP4) channels. Yet, the mechanisms underlying neutrophil recruitment and their pathogenic roles in disease progression remain unclear. To investigate molecular-cellular events preceding classical complement cascade activation in a mouse NMO model, we continuously infused, via spinal subarachnoid route, a non-complement-activating mouse monoclonal AQP4-IgG. Parenchymal infiltration of netting neutrophils containing C5a ensued with microglial activation and motor impairment, but no blood-brain barrier leakage. Motor impairment and neuronal dysfunction both reversed when AQP4-IgG infusion stopped. Two-photon microscopy and electron-microscopy-based reconstructions revealed physical interaction of infiltrating neutrophils with microglia. Ablation of either peripheral neutrophils or microglia attenuated the motor deficit, highlighting their synergistic pathogenic roles. Of note, mice lacking complement receptor C5aR1 exhibited reduction in neutrophil infiltration, microglial lysosomal activation, neuronal lipid-droplet burden and motor impairment. Pharmacological inhibition of C5aR1 recapitulated this protection. Immunohistochemical analysis of an NMO patient's spinal cord revealed disease-associated microglia surrounding motor neurons in non-destructive lesions. Our study identifies neutrophil-derived C5a signaling through microglial C5aR1 as a key early driver of reversible motor neuron dysfunction in the precytolytic phase of NMO.

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Cite This Study

Qi et al. (2026) studied this question.

synapsesocial.com/papers/698ebedd85a1ff6a93016220https://doi.org/10.1172/jci199706
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