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Published on: January 7, 2014
PKCδ-dependent p47phox activation mediates methamphetamine-induced dopaminergic neurotoxicity
Duy-Khanh Dang1, Eun-Joo Shin1, Dae-Joong Kim2
1Neuropsychopharmacology and Toxicology Program, College of Pharmacy, Kangwon National University, Chunchon 24341, Republic of Korea.
Abstract:
Protein kinase C (PKC) has been recognized to activate NADPH oxidase (PHOX). However, the interaction between PKC and PHOX in vivo remains elusive. Treatment with methamphetamine (MA) resulted in a selective increase in PKCδ expression out of PKC isoforms. PKCδ co-immunoprecipitated with p47phox, and facilitated phosphorylation and membrane translocation of p47phox. MA-induced increases in PHOX activity and reactive oxygen species were attenuated by knockout of p47phox or PKCδ. In addition, MA-induced impairments in the Nrf-2-related glutathione synthetic system were also mitigated by knockout of p47phox or PKCδ. Glutathione-immunoreactivity was co-localized in Iba-1-labeled microglial cells and in NeuN-labeled neurons, but not in GFAP-labeled astrocytes, reflecting the necessity for self-protection against oxidative stress by mainly microglia. Buthionine-sulfoximine, an inhibitor of glutathione biosynthesis, potentiated microglial activation and pro-apoptotic changes, leading to dopaminergic losses. These neurotoxic processes were attenuated by rottlerin, a pharmacological inhibitor of PKCδ, genetic inhibitions of PKCδ [i.e., PKCδ knockout mice (KO) and PKCδ antisense oligonucleotide (ASO)], or genetic inhibition of p47phox (i.e., p47phox KO or p47phox ASO). Rottlerin did not exhibit any additive effects against the protective activity offered by genetic inhibition of p47phox. Therefore, we suggest that PKCδ is a critical regulator for p47phox activation induced by MA, and that Nrf-2-dependent GSH induction via inhibition of PKCδ or p47phox, is important for dopaminergic protection against MA insult.
Insights
Methamphetamine increases protein kinase C delta (PKCδ) and NADPH oxidase (PHOX) in the brain. Inhibiting PKCδ or p47phox protects dopamine neurons from methamphetamine-induced oxidative stress.
Area of Science:
- Neuroscience
- Biochemistry
- Pharmacology
Background:
- Protein kinase C (PKC) activates NADPH oxidase (PHOX), but their in vivo interaction is unclear.
- Methamphetamine (MA) selectively increases PKCδ expression.
Purpose of the Study:
- To investigate the interaction between PKCδ and PHOX in vivo during MA treatment.
- To determine the role of PKCδ and p47phox in MA-induced neurotoxicity and the Nrf-2/glutathione system.
Main Methods:
- Utilized PKCδ and p47phox knockout mice and antisense oligonucleotides.
- Administered methamphetamine and measured PHOX activity, reactive oxygen species, and glutathione levels.
- Examined protein expression, co-immunoprecipitation, and cellular localization of glutathione.
Main Results:
- MA increased PKCδ expression, which co-immunoprecipitated with p47phox, promoting its phosphorylation and membrane translocation.
- PKCδ and p47phox knockout attenuated MA-induced PHOX activity, reactive oxygen species, and impairments in the Nrf-2-glutathione system.
- Glutathione was localized in microglia and neurons, crucial for protection against oxidative stress.
Conclusions:
- PKCδ is a critical regulator of p47phox activation by MA.
- Nrf-2-dependent glutathione induction, by inhibiting PKCδ or p47phox, protects dopaminergic neurons from MA-induced damage.
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