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Updated: May 14, 2026

A Neuronal and Astrocyte Co-Culture Assay for High Content Analysis of Neurotoxicity
Published on: May 5, 2009
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.
Abstract:
Neurotoxic regimens of methamphetamine (METH) result in reactive microglia and astrocytes in striatum. Prior data indicate that rats with partial dopamine (DA) loss resulting from prior exposure to METH are resistant to further decreases in striatal DA when re-exposed to METH 30 days later. Such resistant animals also do not show an activated microglia phenotype, suggesting a relation between microglial activation and METH-induced neurotoxicity. To date, the astrocyte response in such resistance has not been examined. Thus, this study examined glial-fibrillary acidic protein (GFAP) and CD11b protein expression in striata of animals administered saline or a neurotoxic regimen of METH on post-natal days 60 and/or 90 (Saline:Saline, Saline:METH, METH:Saline, METH:METH). Consistent with previous work, animals experiencing acute toxicity (Saline:METH) showed both activated microglia and astocytes, whereas those resistant to the acute toxicity (METH:METH) did not show activated microglia. Interestingly, GFAP expression remained elevated in rats exposed to METH at PND60 (METH:Saline), and was not elevated further in resistant rats treated for the second time with METH (METH:METH). These data suggest that astrocytes remain reactive up to 30 days post-METH exposure. In addition, these data indicate that astrocyte reactivity does not reflect acute, METH-induced DA terminal toxicity, whereas microglial reactivity does.
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.

