Glial reactivity in resistance to methamphetamine-induced neurotoxicity

Danielle M Friend1, Kristen A Keefe

  • 1Interdepartmental Program in Neuroscience, University of Utah, Salt Lake City, Utah, USA.

Journal of Neurochemistry
|February 19, 2013
PubMed

Insights

Methamphetamine (METH) neurotoxicity causes reactive microglia and astrocytes. Resistant rats show no microglial activation, but astrocytes remain reactive up to 30 days post-METH exposure, indicating astrocyte reactivity doesn't reflect acute dopamine terminal toxicity.

Area of Science:

  • Neuroscience
  • Toxicology
  • Neuroinflammation

Background:

  • Neurotoxic methamphetamine (METH) exposure causes reactive microglia and astrocytes in the striatum.
  • Rats with prior METH exposure are resistant to subsequent METH-induced dopamine (DA) loss and lack microglial activation.
  • The astrocyte response in METH-induced neurotoxicity resistance remains unexamined.

Purpose of the Study:

  • To investigate astrocyte and microglia responses in rats exhibiting resistance to METH neurotoxicity.
  • To determine if astrocyte reactivity correlates with acute METH-induced DA terminal toxicity.

Main Methods:

  • Rats were administered saline or METH on postnatal days 60 and/or 90.
  • Striatal glial fibrillary acidic protein (GFAP) and CD11b protein expression were measured.
  • Groups included Saline:Saline, Saline:METH, METH:Saline, and METH:METH.

Main Results:

  • Acute METH toxicity (Saline:METH) induced both microglial and astrocyte activation.
  • Resistant rats (METH:METH) did not exhibit microglial activation.
  • GFAP expression remained elevated 30 days post-METH (METH:Saline) and did not increase further in resistant rats (METH:METH).

Conclusions:

  • Astrocytes remain reactive for at least 30 days following METH exposure.
  • Astrocyte reactivity does not mirror acute METH-induced DA terminal toxicity.
  • Microglial reactivity, unlike astrocyte reactivity, correlates with acute METH neurotoxicity.

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