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Science, ISSN 0036-8075, 4/2008, Volume 320, Issue 5873, pp. 201 - 205
Journal Article
Journal Article
Science, ISSN 0036-8075, 04/2018, Volume 360, Issue 6386, pp. 313 - 317
Journal Article
PLoS ONE, ISSN 1932-6203, 2011, Volume 6, Issue 4, pp. e19155 - e19155
The neurotransmitter glutamate is released by excitatory projection neurons throughout the brain. However, non-glutamatergic cells, including cholinergic and... 
DOPAMINE NEURONS | TRANSPORTER-3 | TONICALLY ACTIVE NEURONS | SEROTONINERGIC NEURONS | ACETYLCHOLINE | VESICULAR GLUTAMATE | BIOLOGY | RAT-BRAIN | RECEPTORS | MODULATION | NUCLEUS-ACCUMBENS | Central Nervous System Stimulants - pharmacology | Receptors, Cholinergic - metabolism | Amino Acid Transport Systems, Acidic - metabolism | Interneurons - drug effects | Receptors, N-Methyl-D-Aspartate - metabolism | Channelrhodopsins | Male | Corpus Striatum - metabolism | Evoked Potentials - drug effects | Scopolamine Hydrobromide - pharmacology | Animals | Interneurons - metabolism | Mecamylamine - pharmacology | Corpus Striatum - drug effects | Picrotoxin - pharmacology | Female | Mice | Hostages | Amino acids | Glutamate | Neurons | Choline | Brain | Neurosciences | Interneurons | Synaptogenesis | Glutamic acid receptors (ionotropic) | Neurobiology | Homeostasis | Glutamic acid receptors | Choline O-acetyltransferase | Recombinase | Medical schools | Receptors | Transmitters | Rodents | Neostriatum | Physiology | Acetyltransferase | Localization | Adenosine | Departments | Dopamine | Cortex | N-Methyl-D-aspartic acid receptors | Artificial chromosomes | Metabolism | Spiny neurons | Medicine | Neurology | Acetylcholine receptors | Acetylcholine | Cocaine | Glutamic acid transporter | Glutamatergic transmission | Transporter | Endocrinology | Synapses | Questioning | Index Medicus
Journal Article
FRONTIERS IN MOLECULAR NEUROSCIENCE, ISSN 1662-5099, 05/2019, Volume 12, p. 138
Signaling through bioactive lipids regulates nervous system development and functions. Lysophosphatidic acid (LPA), a membrane-derived lipid mediator... 
glutamatergic transmission | NERVE | RHO KINASE | INVOLVEMENT | SCHIZOPHRENIA | MECHANISMS | PROLIFERATION | NEUROSCIENCES | RECEPTOR-DEFICIENT MICE | neuropathic pain | synaptic plasticity | LONG-TERM POTENTIATION | LPA | glutaminases | EXPRESSION | Nervous system | Rats as laboratory animals | Research | Glutamate | Health aspects
Journal Article
Journal of Neurochemistry, ISSN 0022-3042, 08/2016, Volume 138, Issue 4, pp. 503 - 505
This Editorial highlights a study by Xia and coworkers in the current issue of the Journal of Neurochemistry, in which the authors reveal a possible... 
Schizophrenia | Methyl aspartate | Aspartate | Risk factors | Neurochemistry | Rodents | Mental disorders | Maturation | Glutamic acid receptors (ionotropic) | Astrocytes | Serine | N-Methyl-D-aspartic acid receptors | Glutamic acid receptors | Glutamatergic transmission | Disc1 protein
Journal Article
Neuropsychopharmacology, ISSN 0893-133X, 2018, Volume 43, Issue 2, pp. 302 - 312
The mechanisms underlying chronic stress-induced dysfunction of glutamatergic transmission that contribute to helplessness-associated depressive disorder are... 
PSYCHIATRY | BEHAVIOR | COGNITIVE IMPAIRMENT | NERVE-INJURY | SYNAPTIC PLASTICITY | NEUROSCIENCES | PREFRONTAL CORTEX | KETAMINE | NEUROPATHIC PAIN | AMPA RECEPTORS | LEARNED HELPLESSNESS MODEL | PHARMACOLOGY & PHARMACY | MODULATION | Depression - physiopathology | Receptors, Glucocorticoid - antagonists & inhibitors | Synaptic Transmission - physiology | gamma-Aminobutyric Acid - metabolism | Periaqueductal Gray - drug effects | Male | Receptors, Glucocorticoid - agonists | Depression - etiology | Depression - metabolism | Depression - chemically induced | Stress, Psychological - metabolism | Behavior, Animal - drug effects | Synaptic Transmission - drug effects | Anhedonia - physiology | Receptors, AMPA - metabolism | Disease Models, Animal | Rats | Behavior, Animal - physiology | Rats, Sprague-Dawley | Periaqueductal Gray - metabolism | Periaqueductal Gray - physiopathology | Patch-Clamp Techniques | Animals | Glutamic Acid - metabolism | Stress, Psychological - complications | Receptors, AMPA - antagonists & inhibitors | Sucrose | Mental disorders | Glucocorticoids | Glutamic acid receptors (ionotropic) | Pathogenesis | Foot shock | Glutamic acid receptors | Mental depression | α-Amino-3-hydroxy-5-methyl-4-isoxazole propionic acid receptors | Cell surface | Western blotting | Receptors | Reduction | γ-Aminobutyric acid | Endocytosis | Synaptic transmission | α-Amino-3-hydroxy-5-methyl-4-isoxazole propionic acid | Hedonic response | Sugars | Stresses | Periaqueductal gray area | Pharmacology | Stress | Behavioral despair | Acids | Glutamatergic transmission | Index Medicus | Original
Journal Article
Neuropsychopharmacology, ISSN 0893-133X, 08/2012, Volume 37, Issue 9, pp. 2161 - 2172
Brainstem noradrenergic neurons innervate the mesocorticolimbic reward pathway both directly and indirectly, with norepinephrine facilitating dopamine (DA)... 
norepinephrine | alpha-1 adrenergic | nucleus accumbens | ventral tegmental area | cocaine | dopamine | ALPHA-1B-ADRENERGIC RECEPTORS | PSYCHIATRY | BEHAVIORAL SENSITIZATION | SHELL SUBREGION | DRUG-SEEKING | NEUROSCIENCES | INDUCED REWARD | BETA-HYDROXYLASE | MEDIAL PREFRONTAL CORTEX | PREVIOUS EXPOSURE | PHARMACOLOGY & PHARMACY | D-AMPHETAMINE | Motor Activity - physiology | Nucleus Accumbens - chemistry | Limbic System - chemistry | Synaptic Transmission - physiology | Presynaptic Terminals - chemistry | Presynaptic Terminals - drug effects | Motor Activity - drug effects | Rats | Male | Presynaptic Terminals - physiology | Nucleus Accumbens - physiology | Rats, Sprague-Dawley | Cocaine - administration & dosage | Receptors, Adrenergic, alpha-1 - analysis | Animals | Dopamine - physiology | Limbic System - physiology | Synaptic Transmission - drug effects | Infusions, Intraventricular | Nucleus Accumbens - drug effects | Morphine - administration & dosage | Receptors, Adrenergic, alpha-1 - physiology | Limbic System - drug effects | Index Medicus | Presynapse | Cortex (prefrontal) | Drug abuse | Dopamine | Brain stem | Mesolimbic system | Neurons | Data processing | Nucleus accumbens | Axons | Locomotion | Signal transduction | Microdialysis | Reinforcement | Cocaine | Norepinephrine | Glutamatergic transmission | alpha 1-Adrenergic receptors | Neurotransmission | Original | addiction & substance abuse, psychostimulants, catecholamines, dopamine, norepinephrine, rat, morphine, adrenergic receptor, microdialysis
Journal Article
PLoS ONE, ISSN 1932-6203, 01/2016, Volume 11, Issue 1, pp. e0145858 - e0145858
In recent years it has become clear that corticosteroid hormones (such as corticosterone) are released in ultradian pulses as a natural consequence of... 
RESPONSES | RESPONSIVENESS | GLUCOCORTICOID-RECEPTOR | HORMONE | RAT | ULTRADIAN RHYTHM | MULTIDISCIPLINARY SCIENCES | NEUROTRANSMITTER RECEPTOR | HPA AXIS | SURFACE TRAFFICKING | PULSES | Corticosterone - pharmacology | Embryo, Mammalian | Coculture Techniques | Evoked Potentials - physiology | Male | Molecular Imaging | Neurons - cytology | Hippocampus - drug effects | Excitatory Postsynaptic Potentials - drug effects | Neuroglia - drug effects | Excitatory Postsynaptic Potentials - physiology | Neuroglia - cytology | Neuronal Plasticity - physiology | Neurons - physiology | Neurons - drug effects | Receptors, AMPA - genetics | Synaptic Vesicles - physiology | Receptors, AMPA - metabolism | Microtomy | Gene Expression | Tissue Culture Techniques | Mice, Inbred C57BL | Neuroglia - physiology | Rats | Hippocampus - cytology | Rats, Sprague-Dawley | Protein Transport | Evoked Potentials - drug effects | Animals | Quantum Dots | Synaptic Vesicles - drug effects | Corticosterone - metabolism | Mice | Kinetics | Primary Cell Culture | Hippocampus - physiology | Hypothalamic-pituitary-adrenal axis | Research | Corticosterone | Steroids | Corticoids | Neuroimaging | Brain | Neurosciences | Transcription | Gene regulation | Hormones | α-Amino-3-hydroxy-5-methyl-4-isoxazole propionic acid receptors | α-Amino-3-hydroxy-5-methyl-4-isoxazole propionic acid | Rodents | Plasticity | Protein transport | Medical research | Image resolution | Corticosteroids | Neurons | Quantum dots | Organs | Excitability | Exposure | Interdisciplinary aspects | Gene expression | Surges | Excitatory postsynaptic potentials | Plasticity (synaptic) | Pituitary | Ligands | Glutamatergic transmission | Hippocampus | Index Medicus
Journal Article
Scientific Reports, ISSN 2045-2322, 12/2018, Volume 8, Issue 1, pp. 4685 - 8
Cannabinoids exert dynamic control over many physiological processes including memory formation, cognition and pain perception. In the central nervous system... 
TRANSMITTER RELEASE | CB1 | GLUTAMATERGIC SYNAPSES | MULTIDISCIPLINARY SCIENCES | SYNAPTIC-TRANSMISSION | ELECTRON-MICROSCOPY | CNS | MICE | MYASTHENIA-GRAVIS | RECEPTORS | JUNCTION | Depolarization | Cannabinoids | Neurotransmitter release | Pain perception | Myasthenia gravis | Memory | Central nervous system | Data processing | Nervous system | Neuromuscular junctions | Cognition | Myasthenia | Index Medicus
Journal Article