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1.
Brain Struct Funct ; 223(5): 2409-2432, 2018 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-29500537

RESUMEN

Medial septal GABAergic neurons of the basal forebrain innervate the hippocampus and related cortical areas, contributing to the coordination of network activity, such as theta oscillations and sharp wave-ripple events, via a preferential innervation of GABAergic interneurons. Individual medial septal neurons display diverse activity patterns, which may be related to their termination in different cortical areas and/or to the different types of innervated interneurons. To test these hypotheses, we extracellularly recorded and juxtacellularly labeled single medial septal neurons in anesthetized rats in vivo during hippocampal theta and ripple oscillations, traced their axons to distant cortical target areas, and analyzed their postsynaptic interneurons. Medial septal GABAergic neurons exhibiting different hippocampal theta phase preferences and/or sharp wave-ripple related activity terminated in restricted hippocampal regions, and selectively targeted a limited number of interneuron types, as established on the basis of molecular markers. We demonstrate the preferential innervation of bistratified cells in CA1 and of basket cells in CA3 by individual axons. One group of septal neurons was suppressed during sharp wave-ripples, maintained their firing rate across theta and non-theta network states and mainly fired along the descending phase of CA1 theta oscillations. In contrast, neurons that were active during sharp wave-ripples increased their firing significantly during "theta" compared to "non-theta" states, with most firing during the ascending phase of theta oscillations. These results demonstrate that specialized septal GABAergic neurons contribute to the coordination of network activity through parallel, target area- and cell type-selective projections to the hippocampus.


Asunto(s)
Neuronas GABAérgicas/fisiología , Hipocampo/citología , Tabique del Cerebro/citología , Lóbulo Temporal/citología , Ritmo Teta/fisiología , Potenciales de Acción/fisiología , Animales , Proteínas Portadoras/metabolismo , Procesamiento de Imagen Asistido por Computador , Masculino , Proteínas de la Membrana/metabolismo , Microscopía Confocal , Red Nerviosa/fisiología , Vías Nerviosas , Ratas , Ratas Sprague-Dawley , Receptores de Glutamato Metabotrópico/metabolismo , Péptido Intestinal Vasoactivo/metabolismo , Proteínas de Transporte Vesicular de Acetilcolina/metabolismo , Proteína 2 de Transporte Vesicular de Glutamato/metabolismo
2.
Mol Neurodegener ; 10: 49, 2015 Sep 23.
Artículo en Inglés | MEDLINE | ID: mdl-26399695

RESUMEN

Following publication of this work, we noticed that we inadvertently failed to include Dr Ferenc Deák in the author list. The author list has now been corrected and the amended authors' contributions section has been modified accordingly below.

3.
Mol Neurodegener ; 10: 18, 2015 Apr 09.
Artículo en Inglés | MEDLINE | ID: mdl-25881291

RESUMEN

BACKGROUND: Alzheimer's disease is a neurodegenerative disorder in which extracellular deposition of ß-amyloid (Aß) oligomers causes synaptic injury resulting in early memory loss, altered homeostasis, accumulation of hyperphosphorylated tau and cell death. Since proteins in the SNAP (Soluble N-ethylmaleimide-sensitive factor Attachment Protein) REceptors (SNARE) complex are essential for neuronal Aß release at pre-synaptic terminals, we hypothesized that genetically controlled SNARE expression could alter neuronal Aß release at the synapse and hence play an early role in Alzheimer's pathophysiology. RESULTS: Here we report 5 polymorphisms in Vesicle-Associated Membrane Protein 1 (VAMP1), a gene encoding a member of the SNARE complex, associated with bidirectionally altered cerebellar VAMP1 transcript levels (all p<0.05). At the functional level, we demonstrated that control of VAMP1 expression by heterogeneous knockdown in mice resulted in up to 74% reduction in neuronal Aß exocytosis (p<0.001). We performed a case-control association study of the 5 VAMP1 expression regulating polymorphisms in 4,667 Alzheimer's disease patients and 6,175 controls to determine their contribution to Alzheimer's disease risk. We found that polymorphisms associated with increased brain VAMP1 transcript levels conferred higher risk for Alzheimer's disease than those associated with lower VAMP1 transcript levels (p=0.03). Moreover, we also report a modest protective association for a common VAMP1 polymorphism with Alzheimer's disease risk (OR=0.88, p=0.03). This polymorphism was associated with decreased VAMP1 transcript levels (p=0.02) and was functionally active in a dual luciferase reporter gene assay (p<0.01). CONCLUSIONS: Genetically regulated VAMP1 expression in the brain may modify both Alzheimer's disease risk and may contribute to Alzheimer's pathophysiology.


Asunto(s)
Enfermedad de Alzheimer/genética , Predisposición Genética a la Enfermedad , Proteína 1 de Membrana Asociada a Vesículas/genética , Enfermedad de Alzheimer/fisiopatología , Péptidos beta-Amiloides/genética , Péptidos beta-Amiloides/metabolismo , Animales , Pruebas Genéticas , Humanos , Ratones , Sinapsis/metabolismo , Proteína 1 de Membrana Asociada a Vesículas/metabolismo
4.
Nat Neurosci ; 16(12): 1802-1811, 2013 Dec.
Artículo en Inglés | MEDLINE | ID: mdl-24141313

RESUMEN

Hippocampal sharp waves are population discharges initiated by an unknown mechanism in pyramidal cell networks of CA3. Axo-axonic cells (AACs) regulate action potential generation through GABAergic synapses on the axon initial segment. We found that CA3 AACs in anesthetized rats and AACs in freely moving rats stopped firing during sharp waves, when pyramidal cells fire most. AACs fired strongly and rhythmically around the peak of theta oscillations, when pyramidal cells fire at low probability. Distinguishing AACs from other parvalbumin-expressing interneurons by their lack of detectable SATB1 transcription factor immunoreactivity, we discovered a somatic GABAergic input originating from the medial septum that preferentially targets AACs. We recorded septo-hippocampal GABAergic cells that were activated during hippocampal sharp waves and projected to CA3. We hypothesize that inhibition of AACs, and the resulting subcellular redistribution of inhibition from the axon initial segment to other pyramidal cell domains, is a necessary condition for the emergence of sharp waves promoting memory consolidation.


Asunto(s)
Axones/fisiología , Región CA3 Hipocampal/citología , Red Nerviosa/fisiología , Inhibición Neural/fisiología , Células Piramidales/fisiología , Potenciales de Acción/efectos de los fármacos , Potenciales de Acción/fisiología , Animales , Proteínas de Arabidopsis/metabolismo , Axones/ultraestructura , Biotina/análogos & derivados , Biotina/metabolismo , Ondas Encefálicas/fisiología , Dendritas/metabolismo , Dendritas/ultraestructura , Interneuronas/metabolismo , Interneuronas/fisiología , Masculino , Proteínas de Unión a la Región de Fijación a la Matriz/metabolismo , Red Nerviosa/metabolismo , Red Nerviosa/ultraestructura , Vías Nerviosas/fisiología , Parvalbúminas/metabolismo , Periodicidad , Ratas , Ratas Sprague-Dawley , Factores de Transcripción/metabolismo , Proteínas del Transporte Vesicular de Aminoácidos Inhibidores/metabolismo , Ácido gamma-Aminobutírico/metabolismo
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