Inhibition of monoamine oxidase isoforms modulates nicotine withdrawal syndrome in the rat

D H Malin1, W D Moon, P Goyarzu

  • 1University of Houston-Clear Lake, Houston, TX, USA.

Life Sciences
|August 31, 2013
PubMed
Abstract

Insights

Monoamine oxidase A (MAO A) inhibition significantly worsens nicotine withdrawal symptoms in rats. MAO B inhibition, however, reduces these signs, suggesting MAO A plays a key role in smoking cessation challenges.

Area of Science:

  • Neuroscience
  • Pharmacology

Background:

  • Non-nicotine tobacco smoke components inhibit monoamine oxidase (MAO).
  • MAO inhibition can persist post-smoking cessation, potentially impacting withdrawal.
  • Nicotine withdrawal syndrome is a significant challenge for smoking cessation.

Purpose of the Study:

  • To investigate the effect of MAO inhibition on nicotine withdrawal syndrome.
  • To determine the specific roles of MAO A and MAO B isoforms in nicotine withdrawal.

Main Methods:

  • Nicotine dependence was induced in rats via subcutaneous infusion.
  • Rats were treated with MAO A antagonist (clorgyline) and MAO B antagonist (deprenyl), alone or in combination.
  • Nicotine withdrawal signs were assessed in dependent and non-dependent rats.

Main Results:

  • Combined MAO A and MAO B inhibition significantly exacerbated nicotine withdrawal signs.
  • MAO A inhibition alone worsened withdrawal signs, while MAO B inhibition alone reduced them.
  • Enzymatic assays confirmed the efficacy of clorgyline and deprenyl in inhibiting their respective MAO isoforms.

Conclusions:

  • MAO A inhibition appears to contribute to the severity of nicotine withdrawal syndrome.
  • Targeting MAO isoforms may offer novel therapeutic strategies for managing smoking cessation.

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