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Neuroscience, ISSN 0306-4522, 2010, Volume 169, Issue 4, pp. 1610 - 1620
... [Lucas-Meunier E, Monier C, Amar M, Baux G, Frégnac Y, Fossier P (2009) Cereb Cortex 19:2411–2427]. Our aim is now to establish a functional basis for the role of the different types of muscarinic receptors... 
Neurology | pyramidal neuron | acetylcholine | M1- M2- M3- M4- M5-muscarinic receptors | cortical network | Acetylcholine | Cortical network | Pyramidal neuron | Neurosciences | Neurosciences & Neurology | Life Sciences & Biomedicine | Science & Technology | Pyramidal Cells - metabolism | Rats, Wistar | Receptor, Muscarinic M4 - physiology | Receptor, Muscarinic M1 - antagonists & inhibitors | Receptor, Muscarinic M3 - physiology | Receptors, Muscarinic - metabolism | Receptor, Muscarinic M1 - physiology | Excitatory Postsynaptic Potentials - drug effects | Receptor, Muscarinic M2 - physiology | Visual Cortex - physiology | Excitatory Postsynaptic Potentials - physiology | Neural Inhibition - physiology | Muscarinic Antagonists - pharmacology | Pyramidal Cells - physiology | Receptor, Muscarinic M2 - antagonists & inhibitors | Glutamic Acid - secretion | Pyramidal Cells - drug effects | Organ Culture Techniques | Inhibitory Postsynaptic Potentials - physiology | Rats | Receptor, Muscarinic M3 - antagonists & inhibitors | Animals | Glutamic Acid - metabolism | Visual Cortex - drug effects | Neural Inhibition - drug effects | Receptor, Muscarinic M4 - antagonists & inhibitors | Inhibitory Postsynaptic Potentials - drug effects | Receptors, Muscarinic - physiology | Methyl aspartate | Cell research | Neurons | GABA | Glutamate | Benzodiazepines | Acetylcholine receptors (muscarinic) | Neural Inhibition | Neurons and Cognition | Visual Cortex | Muscarinic Antagonists | Receptor, Muscarinic M1 | Receptor, Muscarinic M2 | Receptor, Muscarinic M3 | Receptor, Muscarinic M4 | Glutamic Acid | Life Sciences | Receptors, Muscarinic | Excitatory Postsynaptic Potentials | Pyramidal Cells | Inhibitory Postsynaptic Potentials
Journal Article
Naunyn-Schmiedeberg's Archives of Pharmacology, ISSN 0028-1298, 4/2009, Volume 379, Issue 4, pp. 389 - 395
Journal Article
Book
2012, First, Handbook of experimental pharmacology, ISBN 3642232736, Volume 208, xiii, 499
Muscarinic acetylcholine receptors have played a key role in the advancement of knowledge of pharmacology and neurotransmission since the inception of studies in these fields, and the effects... 
Muscarinic receptors | Receptors | Acetylcholine | Molecular pharmacology | Biomedicine | Human Physiology | Pharmacology/Toxicology | Endocrinology | Neurobiology | Cell Biology
Book
2002, Molecular and cellular neurobiology series., ISBN 9780192632241, xii, 222
... up the most important ion channels and receptor families, fundamental to synaptic function. Improved understanding of these processes is expected to reveal novel therapeutic targets relevant to a range of disease states... 
Proteins | Ion channels | Physiological transport | Neurons | Neurotransmitter receptors | Molecular and Cellular Systems | Molecular neurobiology | Cation channels | Multimeric proteins | Acetylcholine receptors | Synaptic function | Disease states | Receptor families | Amino acid receptors | Protein complexes
Book
The EMBO journal, ISSN 0261-4189, 03/2002, Volume 21, Issue 5, pp. 909 - 919
In pancreatic acinar cells, low, threshold concentrations of acetylcholine (ACh) or cholecystokinin (CCK) induce repetitive local cytosolic Ca2+ spikes in the... 
cyclic ADP‐ribose | pancreatic acinar cells | inositol trisphosphate | NAADP | local and global calcium | Inositol trisphosphate | Pancreatic acinar cells | Cyclic ADP-ribose | Local and global calcium | Biochemistry & Molecular Biology | Life Sciences & Biomedicine | Science & Technology | Cell Biology | Cell Polarity | Adenosine Diphosphate Ribose - analogs & derivatives | Calcium Signaling - physiology | Pancreas - cytology | Sincalide - pharmacology | Inositol 1,4,5-Trisphosphate - pharmacology | Exocytosis - drug effects | NADP - pharmacology | Receptors, Cholecystokinin - physiology | Calcium Channels - physiology | Receptors, Cell Surface - drug effects | Caffeine - pharmacology | Inositol 1,4,5-Trisphosphate Receptors | NADP - analogs & derivatives | NADP - physiology | Receptors, Cell Surface - physiology | Calcium Channels - drug effects | Acetylcholine - pharmacology | Receptors, Cytoplasmic and Nuclear - drug effects | Receptors, Cholinergic - drug effects | Cholecystokinin - pharmacology | Adenosine Diphosphate Ribose - physiology | Receptors, Cytoplasmic and Nuclear - physiology | Inositol 1,4,5-Trisphosphate - physiology | Receptors, Cholinergic - physiology | Receptors, Cholecystokinin - drug effects | Patch-Clamp Techniques | Animals | Calcium Signaling - drug effects | Cyclic ADP-Ribose | Second Messenger Systems - physiology | Mice | Adenosine Diphosphate Ribose | Calcium Channels | Sincalide | Neurons and Cognition | Receptors, Cell Surface | Exocytosis | Receptors, Cytoplasmic and Nuclear | Life Sciences | Receptors, Cholecystokinin | Acetylcholine | NADP | Cholecystokinin | Pancreas | Inositol 1,4,5-Trisphosphate | Receptors, Cholinergic | Second Messenger Systems | Calcium Signaling | Caffeine | cyclic ADP-ribose
Journal Article
Proceedings of the National Academy of Sciences - PNAS, ISSN 1091-6490, 01/2010, Volume 107, Issue 6, pp. 2693 - 2698
Journal Article
Nature neuroscience, ISSN 1546-1726, 07/2005, Volume 8, Issue 8, pp. 1051 - 1058
Journal Article