Raloxifene, a cannabinoid type-2 receptor inverse agonist, mitigates visual deficits and pathology and modulates

Marcia G Honig1, Nobel A Del Mar1, Desmond L Henderson1

  • 1Department of Anatomy and Neurobiology(,) the University of Tennessee Health Science Center, Memphis, TN, 38163, USA.

Experimental Eye Research
|February 10, 2022
PubMed

Insights

Raloxifene, a CB2 inverse agonist, mitigates visual deficits and optic nerve damage from ocular blast injury (OBI) in mice. This drug shows promise for treating OBI by reducing harmful microglial inflammation.

Area of Science:

  • Ophthalmology
  • Neuroscience
  • Pharmacology

Background:

  • Ocular blast injury (OBI) commonly causes visual deficits, with pro-inflammatory microglia exacerbating retinal and optic nerve damage.
  • Current pharmacological treatments for long-term OBI outcomes are lacking.
  • Cannabinoid type-2 receptor (CB2) inverse agonists modulate microglial polarization from M1 (pro-inflammatory) to M2 (reparative) states.

Purpose of the Study:

  • To investigate the therapeutic potential of raloxifene, an FDA-approved drug with CB2 inverse agonism, in mitigating visual deficits and pathology following single and repeat ocular blast injuries (OBI) in mice.
  • To explore the correlation between optic nerve axon and photoreceptor abundance with specific visual function deficits.
  • To assess the impact of raloxifene on microglial activation markers in response to OBI.

Main Methods:

  • Mice were subjected to single or repeat ocular blast injuries (OBI).
  • Visual functions including contrast sensitivity, visual acuity, and electroretinogram (ERG) A- and B-waves were assessed.
  • Raloxifene treatment was administered daily for 2 weeks post-OBI.
  • Optic nerve axon and photoreceptor cell counts were quantified.
  • Quantitative PCR (qPCR) was used to analyze microglial marker expression in retinal, optic nerve, and thalamic tissues.

Main Results:

  • Single OBI caused subtle visual deficits and optic nerve axon loss, which were reversed by raloxifene treatment.
  • Repeat OBI resulted in severe visual deficits, photoreceptor loss, and optic nerve axon damage, largely mitigated by raloxifene.
  • Optic nerve axon abundance correlated with contrast sensitivity and visual acuity, while photoreceptor abundance correlated with ERG A-wave amplitude and pupil size.
  • Raloxifene treatment reduced M1 microglial marker expression and increased IL10 transcripts in OBI mice, suggesting reduced neuroinflammation.

Conclusions:

  • Raloxifene effectively mitigates visual dysfunction and neuropathology following single and repeat ocular blast injuries in a mouse model.
  • The therapeutic benefits of raloxifene are associated with the modulation of microglial pro-inflammatory responses.
  • These findings support the advancement of raloxifene for phase-2 clinical trials in humans with OBI.