Abstract
Brain functionning is gouverned by two master forces : excitation, mainly supported by glutamatergic transmission, and inhibition, mainly supported by GABAergic transmission. The mutual and balanced influence of these two forces is instrumental to establish and maintain a physiological neuronal activity, particulary in neuronal networks involving several interconnected brain area and neuron types. The metabotropic glutamate receptor type 7, mGlu7, modulates both glutamatergic and GABAergic transmission, but its precise localization andsynaptic role are still widly unknown. Recently, a genetic mouse model has highlighted mGlu7a receptor's involvement into the functionning of a particular network supporting somatosensory perception during arousal and loss of consciousness during sleep, as well as absence epileptic seizures : the thalamo-cortical network. This thesis aims at understanding physiological functions mediated by the mGlu7a receptor in the thalamo-cortical circuit. I have dissected localization and electrophysiologicalprocesses triggered by the receptor in thalamic synapses. The mGlu7a receptor was proved as essential to control oscillatory rythmes in the thalamus, associated with both sleep-related waves (spindles) and absence epileptic seizures.This receptor was supposed to function only during high neuronal activities. In addition, our study highlights a constitutive activity of mGlu7a receptor in excitatory and inhibitory synapses. It thus exerts a permanent brake on Ca2+ presynaptic entry, which is crucial for neuronal developpement, synaptic transmission, excitability and plasticity. I found that this mechanism modulates glutamate and GABA release, but also short term plasticity in thestudied network. Moreover, mGlu7a receptor slows down the inhibitory tonus in the thalamus and thalamic excitability.Surprisingly for a glutamate receptor, these data suggest that the physiological action of mGlu7a receptor is highly involved in the control of the excitability of inhibitory thalamic and cortical neurons. By decreasing synchronous activities of the network, its action leads in fine to the maintenance of a conscious, awake state of a subject, that is necessary for sensorial informations processing, learning and memory.