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Published on: January 22, 2016
Lipopolysaccharide mitagates methamphetamine-induced striatal dopamine depletion via modulating local TNF-alpha and
Yu-Ting Lai1, Yen-Ping N Tsai, Chianfang G Cherng
1Behavioral Neuropharmacology Laboratory, Institute of Behavioral Medicine, National Cheng Kung University College of Medicine, 1 University Rd., Tainan, 70101, Taiwan, ROC.
Abstract:
Systemic lipopolysaccharide (LPS) treatment may affect methamphetamine (MA)-induced nigrostriatal dopamine (DA) depletion. This study was undertaken to determine the critical time window for the protective effects of LPS treatment and the underlying mechanisms. An LPS injection (1 mg/kg) 72 h before or 2 h after MA treatment [three consecutive, subcutaneous injections of MA (10 mg/kg each) at 2-h intervals] diminished the MA-induced DA depletion in mouse striatum. Such an LPS-associated effect was independent of MA-produced hyperthermia. TNF-alpha, IL-1beta, IL-6 expressions were all elevated in striatal tissues following a systemic injection with LPS, indicating that peripheral LPS treatment affected striatal pro-inflammatory cytokine expression. Striatal TNF-alpha expression was dramatically increased at 72 and 96 h after the MA treatment, while such TNF-alpha elevation was abolished by the LPS pretreatment protocol. Moreover, MA-produced activation of nuclear NFkappaB, a transcription factor following TNF-alpha activation, in striatum was abolished by the LPS (1 mg/kg) pretreatment. Furthermore, thalidomide, a TNF-alpha antagonist, treatment abolished the LPS pretreatment-associated protective effects. Pretreatment with mouse recombinant TNF-alpha in striatum diminished the MA-produced DA depletion. Finally, single LPS treatment caused a rapid down-regulation of dopamine transporter (DAT) in striatum. Taken together, we conclude that peripheral LPS treatment protects nigrostriatal DA neurons against MA-induced toxicity, in part, by reversing elevated TNF-alpha expression and subsequent signaling cascade and causing a rapid DAT down-regulation in striatum.
Insights
Systemic lipopolysaccharide (LPS) treatment protects against methamphetamine (MA)-induced dopamine depletion. This protection involves regulating TNF-alpha and down-regulating the dopamine transporter (DAT).
Area of Science:
- Neuroscience
- Pharmacology
- Immunology
Background:
- Methamphetamine (MA) causes significant depletion of dopamine (DA) in the nigrostriatal pathway.
- Systemic lipopolysaccharide (LPS) is known to modulate inflammatory responses and may influence neurotoxicity.
Purpose of the Study:
- To determine the optimal timing for LPS treatment to protect against MA-induced DA depletion.
- To elucidate the underlying mechanisms of LPS-mediated neuroprotection.
Main Methods:
- Mice were treated with LPS at various time points relative to MA administration.
- Dopamine levels and pro-inflammatory cytokine expression (TNF-alpha, IL-1beta, IL-6) in the striatum were measured.
- NF-kappaB activation and dopamine transporter (DAT) expression were assessed.
- The effects of TNF-alpha antagonism and administration were evaluated.
Main Results:
- LPS administration 72 hours before or 2 hours after MA treatment significantly reduced MA-induced DA depletion.
- LPS pretreatment prevented the MA-induced elevation of striatal TNF-alpha and NF-kappaB activation.
- Thalidomide (a TNF-alpha antagonist) blocked the protective effects of LPS.
- Recombinant TNF-alpha administration reduced MA-induced DA depletion.
- LPS treatment led to a rapid down-regulation of striatal DAT.
Conclusions:
- Peripheral LPS treatment offers protection to nigrostriatal dopamine neurons against MA toxicity.
- This neuroprotection is mediated by the reversal of elevated TNF-alpha and its signaling cascade.
- A rapid down-regulation of the dopamine transporter (DAT) in the striatum is a key mechanism involved.
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