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April 3, 2026Nature5 citationsOpen Access

AhR inhibition promotes axon regeneration via a stress–growth switch

DHDalia HalawaniYWYiqun WangJLJiaxi Li

Key Points

  • To investigate the role of aryl hydrocarbon receptor (AhR) in regulating axon regeneration after injury.
  • Identified AhR as a regulator of stress-growth balance in neurons
  • Performed neuronal deletion and pharmacological inhibition of AhR
  • Conducted studies in peripheral nerve and spinal cord injury models
  • Utilized single-cell and epigenomic analyses to examine neuronal injury-response programs
  • AhR inhibition promotes axonal regeneration and functional recovery
  • Activated AhR restricts axon growth by enforcing stress responses
  • AhR ablation leads to enhanced protein synthesis and pro-growth signaling
  • The growth effect requires HIF1α and impacts metabolic pathways

Abstract

Axon regeneration is limited in the mammalian central nervous system1. Neurons must balance stress responses with regenerative demands after axonal injury2, but the mechanisms remain unclear. Here we identify aryl hydrocarbon receptor (AhR), a ligand-activated basic helix–loop–helix/PER-ARNT-SIM (bHLH-PAS) transcription factor, as a key regulator of this stress–growth switch. We show that ligand-mediated AhR signalling restrains axon growth, whereas neuronal deletion or pharmacological inhibition of AhR promotes axonal regeneration and functional recovery in both peripheral nerve and spinal cord injury models. Mechanistic studies reveal that axotomy-induced AhR activation in dorsal root ganglion neurons enforces proteostasis and stress-response programs to preserve tissue integrity. By contrast, AhR ablation redirects the neuronal response towards elevated de novo translation and pro-growth signalling, enabling axon regeneration. This growth-promoting effect requires HIF1α, with shared transcriptional targets enriched for metabolic and regenerative pathways. Single-cell and epigenomic analyses further revealed that the AhR regulon engages the integrated stress response and DNA hydroxymethylation to rewire neuronal injury-response programs. Together, our findings establish AhR as a neuronal brake on axon regeneration, integrating environmental sensing, protein homeostasis and metabolic signalling to control the balance between stress adaptation and axonal repair. AhR functions as a neuronal brake on axon regeneration, integrating environmental sensing, protein homeostasis and metabolic signalling to control the balance between stress adaptation and axonal repair.

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Cite This Study

Halawani et al. (2026) studied this question.

synapsesocial.com/papers/69cf5f105a333a821460de5fhttps://doi.org/10.1038/s41586-026-10295-z
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