0000000000747676

AUTHOR

Bernardo Moreno-lópez

0000-0003-2897-6227

showing 2 related works from this author

Membrane-Derived Phospholipids Control Synaptic Neurotransmission and Plasticity

2015

Synaptic communication is a dynamic process that is key to the regulation of neuronal excitability and information processing in the brain. To date, however, the molecular signals controlling synaptic dynamics have been poorly understood. Membrane-derived bioactive phospholipids are potential candidates to control short-term tuning of synaptic signaling, a plastic event essential for information processing at both the cellular and neuronal network levels in the brain. Here, we showed that phospholipids affect excitatory and inhibitory neurotransmission by different degrees, loci, and mechanisms of action. Signaling triggered by lysophosphatidic acid (LPA) evoked rapid and reversible depress…

MalePatch-Clamp TechniquesQH301-705.5NeurotransmissionBiologyInhibitory postsynaptic potentialSynaptic TransmissionGeneral Biochemistry Genetics and Molecular BiologyMicePregnancySynaptic augmentationMetaplasticityAnimalsRats WistarBiology (General)Motor Neuronsrho-Associated KinasesNeuronal PlasticityGeneral Immunology and MicrobiologyCalcineurinGeneral NeuroscienceReceptors GABA-ACell biologySynaptic fatigueBiochemistrySynapsesSynaptic plasticityExcitatory postsynaptic potentialFemalelipids (amino acids peptides and proteins)Synaptic signalingLysophospholipidsrhoA GTP-Binding ProteinGeneral Agricultural and Biological SciencesResearch Article
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Reduction in the Motoneuron Inhibitory/Excitatory Synaptic Ratio in an Early-Symptomatic Mouse Model of Amyotrophic Lateral Sclerosis

2010

Excitotoxicity is a widely studied mechanism underlying motoneuron degeneration in amyotrophic lateral sclerosis (ALS). Synaptic alterations that produce an imbalance in the ratio of inhibitory/excitatory synapses are expected to promote or protect against motoneuron excitotoxicity. In ALS patients, motoneurons suffer a reduction in their synaptic coverage, as in the transition from the presymptomatic (2-month-old) to early-symptomatic (3-month-old) stage of the hSOD1(G93A) mouse model of familial ALS. Net synapse loss resulted from inhibitory bouton loss and excitatory synapse gain. Furthermore, in 3-month-old transgenic mice, remaining inhibitory but not excitatory boutons attached to mot…

General NeurosciencefungiExcitotoxicityBiologyInhibitory postsynaptic potentialmedicine.diseasemedicine.disease_causeSynaptic vesiclePathology and Forensic MedicineSynapseExcitatory synapsenervous systemmedicineExcitatory postsynaptic potentialNeurology (clinical)Active zoneAmyotrophic lateral sclerosisNeuroscienceBrain Pathology
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