Canal potassique voltage-dépendantVoltage-gated potassium channels (VGKCs) are transmembrane channels specific for potassium and sensitive to voltage changes in the cell's membrane potential. During action potentials, they play a crucial role in returning the depolarized cell to a resting state. Alpha subunits form the actual conductance pore. Based on sequence homology of the hydrophobic transmembrane cores, the alpha subunits of voltage-gated potassium channels are grouped into 12 classes. These are labeled Kvα1-12.
Plasticité fonction du temps d'occurrence des impulsionsLa (en Spike-timing-dependent plasticity, STDP) est un processus de modification du poids des synapses. Cette modification dépend du moment de déclenchement du potentiel d'action dans les neurones pré- et post-synaptique. Ce processus permettrait d'expliquer partiellement le développement cérébral et la mémorisation, en provoquant potentialisation à long terme (en Long-term potentiation, LTP) et dépression à long terme (en Long-term depression, LTD) des synapses.
Mémoire de travailLe système cognitif fonctionne en acquérant, filtrant et traitant des informations vitales, utiles, potentiellement utiles à court, moyen et long termes ; il a donc besoin de stocker (mémoriser) ces informations. Le cerveau semble pour cela disposer de systèmes différents, mais complémentaires, de mémoire à long terme et de mémoire à court terme. La notion de mémoire de travail, apparue dans les années 1970 désigne .
Mémoire spatialevignette|La mémoire spatiale est nécessaire pour naviguer dans un environnement. La mémoire spatiale est la partie de la mémoire d'un individu responsable de l'enregistrement des informations concernant l'espace environnant et l'orientation spatiale de l'individu dans celui-ci. La mémoire spatiale est ainsi requise pour la navigation spatiale dans un lieu connu, comme dans un quartier familier. Elle est étudiée en neuroscience (chez le rat) et en psychologie cognitive (chez l'homme).
Models of neural computationModels of neural computation are attempts to elucidate, in an abstract and mathematical fashion, the core principles that underlie information processing in biological nervous systems, or functional components thereof. This article aims to provide an overview of the most definitive models of neuro-biological computation as well as the tools commonly used to construct and analyze them.
Homeostatic plasticityIn neuroscience, homeostatic plasticity refers to the capacity of neurons to regulate their own excitability relative to network activity. The term homeostatic plasticity derives from two opposing concepts: 'homeostatic' (a product of the Greek words for 'same' and 'state' or 'condition') and plasticity (or 'change'), thus homeostatic plasticity means "staying the same through change". Homeostatic synaptic plasticity is a means of maintaining the synaptic basis for learning, respiration, and locomotion, in contrast to the Hebbian plasticity associated with learning and memory.
Voltage-gated calcium channelVoltage-gated calcium channels (VGCCs), also known as voltage-dependent calcium channels (VDCCs), are a group of voltage-gated ion channels found in the membrane of excitable cells (e.g., muscle, glial cells, neurons, etc.) with a permeability to the calcium ion Ca2+. These channels are slightly permeable to sodium ions, so they are also called Ca2+-Na+ channels, but their permeability to calcium is about 1000-fold greater than to sodium under normal physiological conditions.
Memory consolidationMemory consolidation is a category of processes that stabilize a memory trace after its initial acquisition. A memory trace is a change in the nervous system caused by memorizing something. Consolidation is distinguished into two specific processes. The first, synaptic consolidation, which is thought to correspond to late-phase long-term potentiation, occurs on a small scale in the synaptic connections and neural circuits within the first few hours after learning.
Neuronethumb|537x537px|Schéma complet d’un neurone. Un neurone, ou une cellule nerveuse, est une cellule excitable constituant l'unité fonctionnelle de la base du système nerveux. Les neurones assurent la transmission d'un signal bioélectrique appelé influx nerveux. Ils ont deux propriétés physiologiques : l'excitabilité, c'est-à-dire la capacité de répondre aux stimulations et de convertir celles-ci en impulsions nerveuses, et la conductivité, c'est-à-dire la capacité de transmettre les impulsions.
Baddeley's model of working memoryBaddeley's model of working memory is a model of human memory proposed by Alan Baddeley and Graham Hitch in 1974, in an attempt to present a more accurate model of primary memory (often referred to as short-term memory). Working memory splits primary memory into multiple components, rather than considering it to be a single, unified construct. Baddeley & Hitch proposed their three-part working memory model as an alternative to the short-term store in Atkinson & Shiffrin's 'multi-store' memory model (1968).