ArticleNeuroscience2015
Evidence for a role for α6(∗) nAChRs in l-dopa-induced dyskinesias using Parkinsonian α6(∗) nAChR gain-of-function mice.
Article in Neuroscience, 2015. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 12 papers.
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Who cites it
12 citing papers in PubMed, 17 citations in OpenAlex.
- Striatal synaptic adaptations in Parkinson's disease.Neurobiology of disease · 2022Review
- Cysteine [2,4] Disulfide Bond as a New Modifiable Site of α-Conotoxin TxIB.Marine drugs · 2021Article
- Targeting the cholinergic system in Parkinson's disease.Acta pharmacologica Sinica · 2020Review
- Trihexyphenidyl rescues the deficit in dopamine neurotransmission in a mouse model of DYT1 dystonia.Neurobiology of disease · 2019Article
- Receptor Ligands as Helping Hands to L-DOPA in the Treatment of Parkinson's Disease.Biomolecules · 2019Review
- The striatal cholinergic system in L-dopa-induced dyskinesias.Journal of neural transmission (Vienna, Austria : 1996) · 2018Review
- Striatal cholinergic interneurons and Parkinson's disease.The European journal of neuroscience · 2018Review
- Striatal D1 medium spiny neuron activation induces dyskinesias in parkinsonian mice.Movement disorders : official journal of the Movement Disorder Society · 2017Article
- Article
- Optogenetic activation of striatal cholinergic interneurons regulates L-dopa-induced dyskinesias.Neurobiology of disease · 2016Article
- Deficits in cholinergic neurotransmission and their clinical correlates in Parkinson's disease.NPJ Parkinson's disease · 2016Review
- Preclinical Evidence for a Role of the Nicotinic Cholinergic System in Parkinson's Disease.Neuropsychology review · 2015Review
Corrections and comments
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Authors and funding
5 authors at 3 institutions in 1 country.
Funding
Abstract
l-Dopa-induced dyskinesias (LIDs) are a serious side effect of dopamine replacement therapy for Parkinson's disease. The mechanisms that underlie LIDs are currently unclear. However, preclinical studies indicate that nicotinic acetylcholine receptors (nAChRs) play a role, suggesting that drugs targeting these receptors may be of therapeutic benefit. To further understand the involvement of α6β2(∗) nAChRs in LIDs, we used gain-of-function α6(∗) nAChR (α6L9S) mice that exhibit a 20-fold enhanced sensitivity to nAChR agonists. Wildtype (WT) and α6L9S mice were lesioned by unilateral injection of 6-hydroxydopamine (6-OHDA, 3μg/ml) into the medial forebrain bundle. Three to 4wk later, they were administered l-dopa (3mg/kg) plus benserazide (15mg/kg) until stably dyskinetic. l-dopa-induced abnormal involuntary movements (AIMs) were similar in α6L9S and WT mice. WT mice were then given nicotine in the drinking water in gradually increasing doses to a final 300μg/ml, which resulted in a 40% decline AIMs. By contrast, there was no decrease in AIMs in α6L9S mice at a maximally tolerated nicotine dose of 20μg/ml. However, the nAChR antagonist mecamylamine (1mg/kg ip 30min before l-dopa) reduced l-dopa-induced AIMs in both α6L9S and WT mice. Thus, both a nAChR agonist and antagonist decreased AIMs in WT mice, but only the antagonist was effective in α6L9S mice. Since nicotine appears to reduce LIDs via desensitization, hypersensitive α6β2(∗) nAChRs may desensitize less readily. The present data show that α6β2(∗) nAChRs are key regulators of LIDs, and may be useful therapeutic targets for their management in Parkinson's disease.
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