Interactions of VMAT2 with CDCrel-1 and Parkin in Methamphetamine Neurotoxicity

Heli Chauhan1, Nicholas J Carruthers2,3, Paul M Stemmer1,2

  • 1Department of Pharmaceutical Sciences, Eugene Applebaum College of Pharmacy and Health Sciences, Wayne State University, 259 Mack Ave., Detroit, MI 48201, USA.

Insights

Methamphetamine use disorder causes neurological problems. This study reveals how parkin dysfunction affects dopamine storage and how rats

Area of Science:

  • Neuroscience
  • Pharmacology
  • Molecular Biology

Background:

  • Methamphetamine (METH) misuse is a growing public health concern in the US, with no approved treatments for METH use disorder (MUD).
  • METH use leads to neurotoxicity, affecting neurological functions, with parkin protein dysfunction implicated in these effects.
  • The impact of parkin dysfunction on dopamine (DA) storage capacity in striatal dopaminergic (DAergic) terminals remains unclear.

Purpose of the Study:

  • To investigate the relationship between parkin, its substrate CDCrel-1, and VMAT2 in the context of METH neurotoxicity.
  • To examine how binge METH exposure alters the interaction between CDCrel-1 and VMAT2, and their levels and localization.
  • To explore individual differences in responses to METH neurotoxicity by analyzing molecular changes in DAergic neurons.

Main Methods:

  • Male Sprague Dawley rats were administered binge METH or saline and sacrificed at 1 or 24 hours post-treatment.
  • Proteomic analysis was used to identify proteins associated with VMAT2.
  • Levels and subcellular localization of CDCrel-1 and VMAT2 were assessed.

Main Results:

  • This study is the first to demonstrate an interaction between CDCrel-1 and VMAT2 in the rat striatum.
  • Binge METH exposure significantly altered the CDCrel-1 and VMAT2 interaction, as well as the levels and subcellular distribution of CDCrel-1.
  • Proteomic analysis revealed an upregulation of proteins involved in exocytosis/endocytosis and stress responses in VMAT2-associated proteins.

Conclusions:

  • DAergic neurons exhibit adaptive responses to METH-induced toxicity, including increased endocytosis and autophagy, which vary significantly between individuals.
  • The findings highlight the dynamic interplay between CDCrel-1, VMAT2, and other proteins in response to METH exposure.
  • Understanding individual molecular differences in METH neurotoxicity response can inform the development of targeted treatments for MUD.

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