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A General Method for Evaluating Deep Brain Stimulation Effects on Intravenous Methamphetamine Self-Administration
Published on: January 22, 2016
Ibudilast-Mediated Suppression of Neuronal TLR4 in the Prefrontal Cortex Mitigates Methamphetamine-Induced
Fangmin Wang1,2, Huizhen Liu1, Yuting Ke3
1Zhejiang Provincial Key Lab of Addiction Research, The Affiliated Kangning Hospital of Ningbo University, Ningbo, People's Republic of China.
Abstract:
Methamphetamine (METH) use leads to addiction, neurotoxicity, and neuroinflammation. Ibudilast, a toll-like receptor 4 (TLR4) inhibitor, has been shown to reduce METH-induced neuroinflammation and self-administration, but its specific role in neuronal TLR4 signalling and associated behavioural outcomes remains poorly understood. This study examined Ibudilast's effects on METH reward, drug-seeking behaviour, and TLR4 signalling in a rat self-administration model. Ibudilast was found to dose-dependently reduce METH intake and motivation for the drug, as evidenced by a downward shift in the dose-response curve and a decrease in breakpoint. Additionally, Ibudilast suppressed both cue- and METH priming-induced drug-seeking behaviours. Western blot analysis revealed elevated TLR4, p-NF-κB and IL-6 in the prefrontal cortex after 14 days of METH self-administration. These increases were significantly attenuated by Ibudilast treatment. Furthermore, local administration of Ibudilast in the prefrontal cortex led to a reduction in METH intake and motivation, as well as decreased TLR4 expression in this brain region. Immunofluorescence staining was revealed that TLR4 was expressed predominantly in neurons and microglia, with METH-induced upregulation of neuronal TLR4 being linked to apoptosis. Ibudilast restored normal spatial interactions between neurons and microglia, thereby mitigating neuroinflammation and neuronal damage. Furthermore, local injection of Ibudilast in the prefrontal cortex led to a reduction in METH intake and motivation, as well as decreased expression of TLR4 in the brain region. These findings underscore the critical role of neuronal TLR4 in METH addiction and highlight Ibudilast's therapeutic potential in addressing METH-related neuroinflammation and behavioural dysregulation.
Insights
Ibudilast, a toll-like receptor 4 (TLR4) inhibitor, effectively reduces methamphetamine (METH) intake and drug-seeking behaviors in rats. This study demonstrates Ibudilast
Area of Science:
- Neuroscience
- Pharmacology
- Addiction Research
Background:
- Methamphetamine (METH) use causes addiction, neurotoxicity, and neuroinflammation.
- Ibudilast, a toll-like receptor 4 (TLR4) inhibitor, shows promise in reducing METH-induced neuroinflammation and self-administration.
- The precise role of neuronal TLR4 signaling in METH addiction and related behaviors requires further investigation.
Purpose of the Study:
- To investigate the effects of Ibudilast on METH reward, drug-seeking behavior, and TLR4 signaling.
- To explore the therapeutic potential of Ibudilast in a rat METH self-administration model.
Main Methods:
- Rats underwent a METH self-administration paradigm.
- Ibudilast was administered systemically and locally into the prefrontal cortex.
- Behavioral outcomes (intake, motivation, drug-seeking) and molecular markers (TLR4, p-NF-κB, IL-6, apoptosis) were assessed using Western blot and immunofluorescence.
Main Results:
- Ibudilast dose-dependently reduced METH intake and motivation, shifting the dose-response curve and decreasing the breakpoint.
- Ibudilast suppressed cue- and METH priming-induced drug-seeking behaviors.
- METH self-administration increased TLR4, p-NF-κB, and IL-6 in the prefrontal cortex; Ibudilast attenuated these increases and reduced METH-induced neuronal apoptosis by restoring neuronal-microglial interactions.
Conclusions:
- Neuronal TLR4 plays a critical role in METH addiction.
- Ibudilast effectively mitigates METH-induced neuroinflammation and associated behavioral dysregulation.
- Ibudilast demonstrates significant therapeutic potential for treating METH addiction.
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