γ oscillations are associated with higher brain functions such as memory, perception and consciousness. Disruption of γ oscillations occur in various neuro-psychological disorders such as schizophrenia. Nicotinic acetylcholine receptors (nAChR) are highly expressed in the hippocampus, however, little is known about the role on hippocampal persistent γ oscillation. This study examined the effects of nicotine and selective nAChR agonists and antagonists on kainate-induced persistent γ oscillation in rat hippocampal slices. Nicotine enhanced γ oscillation at concentrations of 0.1-10 μM, but reduced it at a higher concentration of 100 μM. The enhancement on γ oscillation can be best mimicked by co-application of α4β2- and α7-nAChR agonist and reduced by a combination of nAChR antagonists, DhβE and MLA. However, these nAChR antagonists failed to block the suppressing role of nicotine on γ. Furthermore, we found that the NMDA receptor antagonist D-AP5 completely blocked the effect of nicotine. These results demonstrate that nicotine modulates γ oscillations via α7 and α4β2 nAChR as well as NMDA activation, suggesting that nAChR activation may have a therapeutic role for the clinical disorder such as schizophrenia, which is known to have impaired γ oscillation and hypo-NMDA receptor function.
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http://dx.doi.org/10.1038/srep09493 | DOI Listing |
Ann Neurosci
January 2025
Department of Neurology, Pushpagiri Institute of Medical Sciences and Research Centre, Thiruvalla, Kerala, India.
Background: Myasthenia gravis is an autoimmune neuromuscular disease primarily caused by autoantibodies against nicotinic acetylcholine receptors (AChRs) at the neuromuscular junction. However, extrathymic malignancies need to be considered in the elderly population.
Purpose: Although thymic malignancy is the most common tumour association, several extrathymic malignancies complicated with myasthenia gravis have been reported.
Toxicol Lett
January 2025
Bundeswehr Institute for Pharmacology and Toxicology, Neuherbergstraße 11, 80937 Munich, Germany. Electronic address:
The nicotinic acetylcholine receptor (nAChR) is a pentameric ligand-gated ion channel (pLGIC) commonly used as a model for receptors belonging to the Cys-loop superfamily. Members of pLGICs are standardly used in numerous toxicological investigations e.g.
View Article and Find Full Text PDFNeurotoxicology
January 2025
Laboratoire Physiologie, Ecologie and Environnement (P2E), Université d'Orléans, UR 1207, USC-INRAE 1328, 1 rue de Chartres, 45067 Orléans, France; Institut Universitaire de France (IUF), 1 rue Descartes 75005 Paris, France. Electronic address:
Although neonicotinoids were considered safe for mammals for many decades, recent research has proven that these insecticides can alter cholinergic functions by interacting with neuronal nicotinic acetylcholine (ACh) receptors (nAChRs). One such receptor is the heteromeric α4β2 nAChR, which exists under two different stoichiometries: high sensitivity and low sensitivity α4β2 nAChRs. To replace these insecticides, new classes of insecticides have been developed, such as, sulfoximine, sulfoxaflor, and the butanolide, flupyradifurone.
View Article and Find Full Text PDFJ Biol Chem
January 2025
School of Biological Sciences, University of Utah, Salt Lake City, Utah, USA; Department of Psychiatry, University of Utah, Salt Lake City, Utah, USA; George E. Whalen Veterans Affairs Medical Center, Salt Lake City, Utah, USA.
Nicotinic acetylcholine receptors (nAChRs) are pentameric ligand-gated ion channels. In mammals, there are 16 individual nAChR subunits allowing for numerous possible heteromeric compositions. nAChRs assembled from α7 or α9 subunits will form as homopentamers.
View Article and Find Full Text PDFACS Chem Neurosci
January 2025
Departments of Psychiatry and Neurology, Division of Molecular Therapeutics, New York State Psychiatric Institute, Columbia University Medical Center, New York, New York 10032, United States.
Voluntary movement, motivation, and reinforcement learning depend on the activity of ventral midbrain neurons, which extend axons to release dopamine (DA) in the striatum. These neurons exhibit two patterns of action potential activity: low-frequency tonic activity that is intrinsically generated and superimposed high-frequency phasic bursts that are driven by synaptic inputs. acute striatal brain preparations are widely employed to study the regulation of evoked DA release but exhibit very different DA release kinetics than recordings.
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