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Nature (London), ISSN 1476-4687, 2011, Volume 472, Issue 7344, pp. 466 - 470
Adult hippocampal neurogenesis is a unique form of neural circuit plasticity that results in the generation of new neurons in the dentate gyrus throughout... 
DEPRESSION | MODELS | MEMORY | MULTIDISCIPLINARY SCIENCES | NEURONS | DISORDER | DENTATE GYRUS | MATURATION | SYNAPTIC PLASTICITY | FLUOXETINE | BRAIN | Apoptosis - drug effects | Learning - drug effects | Neuronal Plasticity - drug effects | Male | Neural Stem Cells - cytology | Anxiety - therapy | Neuronal Plasticity - physiology | Long-Term Potentiation - drug effects | Exploratory Behavior - drug effects | Cognition - physiology | Long-Term Potentiation - physiology | Antidepressive Agents - pharmacology | bcl-2-Associated X Protein - deficiency | Extinction, Psychological - physiology | Cell Survival - drug effects | Synapses - drug effects | Conditioning, Classical - drug effects | Affect - physiology | bcl-2-Associated X Protein - metabolism | Anxiety - physiopathology | Mice, Transgenic | Hippocampus - pathology | Cognition - drug effects | Mice, Knockout | Dentate Gyrus - cytology | Aging - physiology | Dentate Gyrus - physiology | Mice | Dentate Gyrus - pathology | Hippocampus - physiopathology | Memory - physiology | Memory - drug effects | Aging - drug effects | Extinction, Psychological - drug effects | Fear - physiology | Dentate Gyrus - physiopathology | Exploratory Behavior - physiology | Synapses - metabolism | Fear - psychology | Female | Neurogenesis - drug effects | bcl-2-Associated X Protein - genetics | Neural Stem Cells - drug effects | Hippocampus - cytology | Physical Conditioning, Animal - physiology | Conditioning, Classical - physiology | Aging - pathology | Learning - physiology | Animals | Neurogenesis - physiology | Models, Neurological | Hippocampus - physiology | Neural Stem Cells - metabolism | Physiological aspects | Hippocampus (Brain) | Neurogenesis | Health aspects | Proteins | Studies | Young adults | Cognition & reasoning | Neurons | Anxieties | Rodents | Behavior
Journal Article
Nature Neuroscience, ISSN 1097-6256, 06/2017, Volume 20, Issue 6, pp. 784 - 792
The function of cortical GABAergic interneurons is largely determined by their integration into specific neural circuits, but the mechanisms controlling the... 
NERVOUS-SYSTEM | ENTORHINAL CORTEX | INHIBITION | RAT | GABA RELEASE | GABAERGIC INTERNEURONS | KNOCKOUT MICE | NEUROSCIENCES | PREFRONTAL CORTEX | CEREBRAL-CORTEX | HIPPOCAMPAL INTERNEURONS | Interneurons - physiology | Amino Acid Transport Systems, Acidic - metabolism | GABAergic Neurons - physiology | Male | Neural Pathways - physiology | Cerebral Cortex - metabolism | Spatial Learning - physiology | Exploratory Behavior - physiology | Neural Inhibition - physiology | Cholecystokinin - metabolism | Pyramidal Cells - physiology | Receptor, ErbB-4 - physiology | CA1 Region, Hippocampal - metabolism | GABAergic Neurons - metabolism | Theta Rhythm - physiology | Cholecystokinin - physiology | CA1 Region, Hippocampal - physiology | Maze Learning - physiology | Spatial Memory - physiology | Mice, Transgenic | Place Cells - physiology | Animals | Interneurons - metabolism | Cholecystokinin - genetics | Receptor, ErbB-4 - biosynthesis | Cerebral Cortex - physiology | Mice | Receptor, ErbB-4 - genetics | Prepulse Inhibition - physiology | Locomotion - physiology | Spatial analysis (Statistics) | Cholecystokinin | Research | Tyrosine | Integration | Interneurons | Circuits | Exploratory behavior | Spatial discrimination learning | Cortex | Theta rhythms | ErbB-2 protein | Wiring | Coding | Pyramidal cells | Neural networks | Rodents | Protein-tyrosine kinase receptors | Glutamic acid transporter | Disruption | Protein-tyrosine kinase | Transporter | Synapses | Spatial memory
Journal Article
Journal Article
Journal Article
Journal Article
Journal Article
Neuron (Cambridge, Mass.), ISSN 0896-6273, 2017, Volume 94, Issue 4, pp. 731 - 743
The neuronal circuits of the basolateral amygdala (BLA) are crucial for acquisition, consolidation, retrieval, and extinction of associative emotional... 
amygdala | memory | engrams | synaptic plasticity | oscillations | fear | interneurons | HIPPOCAMPAL THETA-RHYTHM | IN-VITRO | FEAR MEMORY | AMPA RECEPTORS | RAT BASOLATERAL AMYGDALA | LATERAL AMYGDALA | LONG-TERM POTENTIATION | CONDITIONED FEAR | DEPENDENT LATE-PHASE | NEUROSCIENCES | STIMULUS REWARD ASSOCIATIONS | Emotions - physiology | Brain Waves - physiology | Mental Recall | Conditioning (Psychology) - physiology | Humans | Delta Rhythm - physiology | Fear - physiology | Gamma Rhythm - physiology | Neural Pathways | Association Learning - physiology | Animals | Neuronal Plasticity - physiology | Thalamus - physiology | Basolateral Nuclear Complex - physiology | Nerve Net | Long-Term Potentiation - physiology | Cerebral Cortex - physiology | Appetitive Behavior | Amygdala - physiology | Memory - physiology | Theta Rhythm - physiology | Neurons | Neurosciences | Retrieval | Brain | Visual cortex | Amygdala | Memory | Defensive behavior | Disorders | Cognitive ability | Nuclei | Learning | Motivation | Coding | Reinforcement | Genetics | Conditioning | Emotional behavior | Temporal lobe | Long-term potentiation | Sun | Substrates | Circular dichroism | Auditory pathways | Stellar mass | Protocol (computers) | Human behavior | Synapses | Hippocampus | Mental disorders | Circuits | Oscillations | Stimulation | Activation | Cortex (somatosensory) | Visual perception | Associative memory | Consolidation | Rodents | Primates | Long-term depression | Cortex (auditory) | Dopamine | Extinction | Associative learning | Prefrontal cortex | Fear | Axons | Strength | Sensory stimuli
Journal Article
Journal Article