Nitric oxide synthase inhibitors prevent the growth-inhibiting effects of quinpirole

Debora L Nickla1, Laimeng Lee, Kristen Totonelly

  • 1*PhD †BA ‡MS Department of Biosciences and Disease, The New England College of Optometry, Boston, Massachusetts.

Abstract

Insights

Dopamine acts upstream of nitric oxide (NO) in regulating eye growth. Combining dopamine agonists with NO synthesis inhibitors reversed dopamine

Area of Science:

  • Ophthalmology
  • Neuroscience
  • Pharmacology

Background:

  • Dopamine and nitric oxide (NO) are key signaling molecules in ocular growth regulation.
  • The precise order of dopamine and NO in the signaling pathway for eye growth inhibition remains unclear.

Purpose of the Study:

  • To investigate the hypothesis that dopamine acts upstream of NO in the cascade controlling ocular growth.
  • To determine the sequential relationship between dopamine and NO signaling in experimental myopia models.

Main Methods:

  • Chicks were subjected to form deprivation (FD) or negative lens wear (-10 D) from day 13 to 17.
  • Experimental groups received daily injections of quinpirole (dopamine agonist), NOS inhibitors (NPA or L-NIO), or combinations thereof.
  • Ocular growth rate was assessed using high-frequency ultrasonography, and refractions were measured.

Main Results:

  • Quinpirole alone inhibited myopia development in both paradigms.
  • Co-administration of NOS inhibitors with quinpirole led to myopia, indicating a reversal of the inhibitory effect.
  • NPA, but not L-NIO, prevented quinpirole-induced choroidal thickening in lens-induced eyes, suggesting differential mechanisms.

Conclusions:

  • Dopamine functions upstream of NO and the choroidal response in the signaling pathway for ocular growth inhibition.
  • The mechanisms of choroidal thickening may differ between form deprivation and lens-induced myopia.

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