{"id":2124,"date":"2014-11-27T18:21:56","date_gmt":"2014-11-27T17:21:56","guid":{"rendered":"http:\/\/www.neurosciences.asso.fr\/en\/soutiens\/"},"modified":"2026-02-09T12:32:49","modified_gmt":"2026-02-09T10:32:49","slug":"soutiens","status":"publish","type":"page","link":"https:\/\/www.neurosciences.asso.fr\/en\/soutiens\/","title":{"rendered":"PhD Thesis awards"},"content":{"rendered":"<div class=\"wpb-content-wrapper\">[vc_row][vc_column][vc_empty_space height=&#8221;40&#8243;][vc_tta_tabs style=&#8221;modern&#8221; color=&#8221;white&#8221; spacing=&#8221;30&#8243; alignment=&#8221;center&#8221; active_section=&#8221;1&#8243; no_fill_content_area=&#8221;true&#8221;][vc_tta_section title=&#8221;Call for application&#8221; tab_id=&#8221;1700470175251-ac1f7025-c64f&#8221;][vc_column_text css=&#8221;&#8221;]In 2026, the French Neuroscience Society will offer PhD Thesis awards of 1000 \u20ac each, for a PhD work performed in France.<\/p>\n<p>&nbsp;<\/p>\n<h4><strong>Conditions<\/strong><\/h4>\n<p>Applicant must:<\/p>\n<p>\u00b7\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0Be a member of the French Neuroscience Society<\/p>\n<p>\u00b7\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0Have defended their thesis between January 1st and December 31st 2025<\/p>\n<p>\u00b7\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0Have completed their thesis work in France<\/p>\n<p>\u00b7\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0Have posted information related to their thesis on <a href=\"https:\/\/www.neurosciences.asso.fr\/mespages\/theses\/\" target=\"_blank\" rel=\"noopener\">the website of the French Neuroscience Society<\/a><\/p>\n<p>&nbsp;<\/p>\n<h4><strong>To be complete, the application must include<\/strong><\/h4>\n<p>\u00b7\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0 A cover letter (3000 characters, spaces included) describing the candidate\u2019s profile and research accomplishments, the novelty and interest of his\/her work for the field of neuroscience. Present your professional project.<\/p>\n<p>\u00b7\u00a0 \u00a0 \u00a0 A brief CV including, in particular, your academic background and additional training, a list of publications, original articles and conference presentations, scientific mobility, awards, and contributions to the community (including teaching, outreach, organization, mentoring, and collective involvement).<\/p>\n<p>\u00b7\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0 A description of the candidate&#8217;s research work and projects (PhD and post-doctorate), 3-4 pages maximum. It is essential to specify the personal contributions of the candidate to this work and publications.<\/p>\n<p>\u00b7\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0 The thesis reports (PDF format)<\/p>\n<p>\u00b7\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0 The thesis (PDF format)<\/p>\n<p>&nbsp;<\/p>\n<p><strong>Deadline for application: 6 February 2026 included.<\/strong><\/p>\n<p><strong>The call for application is closed.<\/strong>[\/vc_column_text][\/vc_tta_section][vc_tta_section title=&#8221;2025 award winners&#8221; tab_id=&#8221;1700470175252-8c1d59d0-e424&#8243;][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;26231&#8243; style=&#8221;vc_box_circle_2&#8243; css=&#8221;&#8221;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text css=&#8221;&#8221;]<strong>Jade DUNOT<\/strong><br \/>\nAETA, un nouveau neuromodulateur du r\u00e9cepteur NMDA dans l\u2019hippocampe et son implication dans la maladie d\u2019Alzheimer<\/p>\n<p>Directrice de th\u00e8se\u2009: <strong>H\u00e9l\u00e8ne Marie<\/strong><br \/>\nLieux de th\u00e8se : Institut de Pharmacologie Mol\u00e9culaire et Cellulaire (IPMC), Valbonne[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_single_image image=&#8221;26263&#8243; img_size=&#8221;large&#8221; alignment=&#8221;center&#8221; css=&#8221;&#8221;][vc_separator][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;26235&#8243; style=&#8221;vc_box_circle_2&#8243; css=&#8221;&#8221;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text css=&#8221;&#8221;]<strong>Simon J. Guillot<\/strong><br \/>\nInvestigation of non-motor symptoms in amyotrophic lateral sclerosis: the role of the hypothalamus in sleep regulation and metabolic control<\/p>\n<p>Directeur de th\u00e8se\u2009: <strong>Luc Dupuis<\/strong><br \/>\nLieux de th\u00e8se : Centre de Recherche en Biom\u00e9decine, Strasbourg[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_single_image image=&#8221;26239&#8243; img_size=&#8221;large&#8221; alignment=&#8221;center&#8221; css=&#8221;&#8221;][vc_separator][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;26243&#8243; style=&#8221;vc_box_circle_2&#8243; css=&#8221;&#8221;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text css=&#8221;&#8221;]<strong>Antonin Verdier<\/strong><br \/>\nVers un implant optog\u00e9n\u00e9tique cortical pour la restauration auditive<\/p>\n<p>Directeur de th\u00e8se\u2009: <strong>Brice Bathellier<\/strong><br \/>\nLieux de th\u00e8se : Institut de l&#8217;Audition, Institut Pasteur, Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_single_image image=&#8221;26247&#8243; img_size=&#8221;large&#8221; alignment=&#8221;center&#8221; css=&#8221;&#8221;][\/vc_tta_section][vc_tta_section title=&#8221;Previous award winners&#8221; tab_id=&#8221;1700470195183-352cf8f9-9e4d&#8221;][vc_text_separator title=&#8221;2024&#8243; css=&#8221;&#8221;][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;23610&#8243; style=&#8221;vc_box_circle_2&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Rachel BRETON<\/strong><br \/>\nRo\u0302le des astrocytes dans la pe\u0301riode critique de la plasticite\u0301 visuelle.<\/p>\n<p>Directeur\u00b7trice\u00b7s de th\u00e8se\u2009: <strong>Glenn Dall\u00e9rac et Nathalie Rouach<\/strong><br \/>\nLieux de th\u00e8se : Institut des Neurosciences Paris-Saclay (NeuroPSI, CNRS) et au Centre interdisciplinaire de recherche en Biologie (CIRB), Colle\u0300ge de France[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_single_image image=&#8221;23762&#8243; img_size=&#8221;large&#8221; alignment=&#8221;center&#8221;][vc_separator][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;23614&#8243; style=&#8221;vc_box_circle_2&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>M\u00e9lina CORDEAU<\/strong><br \/>\nPerception de la voix : caract\u00e9risation anatomique compar\u00e9es des aires fonctionnelles chez l&#8217;humain et le macaque.<\/p>\n<p>Directeur de th\u00e8se\u2009: <strong>Pascal Belin<\/strong><br \/>\nLieu de th\u00e8se : Institut de Neurosciences de la Timone, Marseille[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_single_image image=&#8221;23766&#8243; img_size=&#8221;large&#8221; alignment=&#8221;center&#8221;][vc_separator][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;23618&#8243; style=&#8221;vc_box_circle_2&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Agathe LAFONT<\/strong><br \/>\nThe glial action potential &amp; its role during the emergence of motor behaviour.<\/p>\n<p>Directeur de th\u00e8se\u2009: <strong>Jean-Marc Mangin<\/strong><br \/>\nLieu de th\u00e8se : Laboratoire Neurosciences Paris Seine \/ \u00c9quipe &#8220;D\u00e9veloppement de l&#8217;Organisation Spinale&#8221;[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_single_image image=&#8221;23770&#8243; img_size=&#8221;full&#8221; alignment=&#8221;center&#8221;][vc_separator][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;23758&#8243; style=&#8221;vc_box_circle_2&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Romain SALA<\/strong><br \/>\nParallel cerebello-cerebral pathways and their involvement in implicit learning.<\/p>\n<p>Directeur\u00b7trice\u00b7s de th\u00e8se\u2009: <strong>Daniela Popa et Cl\u00e9ment L\u00e9na<\/strong><br \/>\nLieu de th\u00e8se : IBENS \/ Neurophysiology of Brain Circuits[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_single_image image=&#8221;23774&#8243; img_size=&#8221;large&#8221; alignment=&#8221;center&#8221;][vc_text_separator title=&#8221;2023&#8243;][vc_column_text]En 2023, cette initiative a \u00e9t\u00e9 soutenue par<\/p>\n<p><a href=\"https:\/\/www.neurosciences.asso.fr\/wp-content\/uploads\/2023\/04\/TCCI_logo_WhiteBG-e1682585002717.png\"><img loading=\"lazy\" decoding=\"async\" class=\"alignnone wp-image-19598\" src=\"https:\/\/www.neurosciences.asso.fr\/wp-content\/uploads\/2023\/04\/TCCI_logo_WhiteBG-e1682585002717.png\" alt=\"\" width=\"236\" height=\"117\" srcset=\"https:\/\/www.neurosciences.asso.fr\/wp-content\/uploads\/2023\/04\/TCCI_logo_WhiteBG-e1682585002717.png 581w, https:\/\/www.neurosciences.asso.fr\/wp-content\/uploads\/2023\/04\/TCCI_logo_WhiteBG-e1682585002717-300x149.png 300w\" sizes=\"auto, (max-width: 236px) 100vw, 236px\" \/><\/a><\/p>\n<ul>\n<li><a href=\"https:\/\/www.neurosciences.asso.fr\/en\/2023\/05\/new-partnership-with-the-chen-institute\/\" target=\"_blank\" rel=\"noopener\">Voir le communiqu\u00e9 de presse<\/a><\/li>\n<\/ul>\n[\/vc_column_text][vc_row_inner][vc_column_inner width=&#8221;1\/3&#8243;][vc_single_image image=&#8221;20044&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;2\/3&#8243;][vc_column_text]<strong>Cassandre VIELLE<\/strong><br \/>\nInfluence of proximal social factors on cocaine consumption and the role played by the subthalamic nucleus.<\/p>\n<p>Directrice de th\u00e8se : <strong>Christelle Baunez<\/strong><br \/>\nLieu de th\u00e8se : Institut de Neurosciences de la Timone, Facult\u00e9 de M\u00e9d\u00e9cine, Marseille[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_single_image image=&#8221;20049&#8243; img_size=&#8221;large&#8221; alignment=&#8221;center&#8221;][vc_separator][vc_row_inner][vc_column_inner width=&#8221;1\/3&#8243;][vc_single_image image=&#8221;20053&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;2\/3&#8243;][vc_column_text]<strong>Marc OUDART<\/strong><br \/>\nCharacterization of translational mechanisms in astrocytes.<\/p>\n<p>Directrice de th\u00e8se : <strong>Martine Cohen-Salmon<\/strong><br \/>\nLieu de th\u00e8se : \u00c9quipe \u2018Physiologie et physiopathologie de l\u2019unite\u0301 gliovasculaire\u2019, Centre Interdisciplinaire de recherche en biologie, Colle\u0300ge de France, Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_single_image image=&#8221;20061&#8243; img_size=&#8221;large&#8221; alignment=&#8221;center&#8221;][vc_separator][vc_row_inner][vc_column_inner width=&#8221;1\/3&#8243;][vc_single_image image=&#8221;20065&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;2\/3&#8243;][vc_column_text]<strong>Florian DONNEGER<\/strong><br \/>\nCaracte\u0301risation et inte\u0301re\u0302t the\u0301rapeutique de potentialisateurs du co-transporteur potassium-chlorure de type 2 (KCC2) dans les e\u0301pilepsies du lobe temporal.<\/p>\n<p>Directeur de th\u00e8se : <strong>Jean-Christophe Poncer<\/strong><br \/>\nLieu de th\u00e8se : Institut du Fer a\u0300 Moulin, Inserm-Sorbonne Universite\u0301 UMR-1270, Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_single_image image=&#8221;20069&#8243; img_size=&#8221;large&#8221; alignment=&#8221;center&#8221;][vc_text_separator title=&#8221;2022&#8243;][vc_row_inner][vc_column_inner width=&#8221;1\/3&#8243;][vc_single_image image=&#8221;16846&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;2\/3&#8243;][vc_column_text]<strong>Ali-Kemal AYDIN<\/strong><br \/>\nFunctional brain imaging techniques: bridging the gap between microscopic and mesoscopic vascular measurements<\/p>\n<p>Directeur de th\u00e8se\u2009: <strong>Serge\u00a0Charpak<\/strong><br \/>\nLieux de th\u00e8se : Laboratory of Neurophysiology and New Microscopy, 45 Rue des Saints P\u00e8res, Paris &amp; Institut de la Vision, 17 Rue Moreau, 75012 Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;2\/3&#8243;][vc_column_text]Neurons and glial cells require a continuous adaptation of blood supply to meet their metabolic needs. Functional hyperemia is a local increase of blood flow triggered by neuronal activation, and which is regulated by neurovascular coupling, an ensemble of cellular and molecular pathways. fMRI-BOLD and functional ultrasound (fUS) are two brain imaging modalities that rely on functional hyperemia to map normal and pathological brain function. My first project determined the dynamics of neurovascular coupling and quantified how well the fUS signal reports brain activation. Using a new theoretical approach, we determined that neurovascular coupling can be modeled with a fast hemodynamic response function (HRF) that allows to predict the dynamics of fUS signals. My last project solved the BOLD fMRI controversy concerning the existence of the \u2018initial dip\u2019, a transient decrease of brain oxygenation due to neuronal activation. We showed that the dip is not detectable when the animal is awake and under physiological conditions.[\/vc_column_text][\/vc_column_inner][vc_column_inner width=&#8221;1\/3&#8243;][vc_single_image image=&#8221;16850&#8243; alignment=&#8221;center&#8221; onclick=&#8221;link_image&#8221;][\/vc_column_inner][\/vc_row_inner][vc_separator][vc_row_inner][vc_column_inner width=&#8221;1\/3&#8243;][vc_single_image image=&#8221;16871&#8243; alignment=&#8221;center&#8221; onclick=&#8221;link_image&#8221;][\/vc_column_inner][vc_column_inner width=&#8221;2\/3&#8243;][vc_column_text]<strong>Sophie BAVARD<\/strong><br \/>\nComputational principles of adaptive coding in healthy and impaired reinforcement learning<\/p>\n<p>Directeur de th\u00e8se\u2009: <strong>Stefano\u00a0Palminteri<\/strong><br \/>\nLieu de th\u00e8se : Laboratoire de neurosciences cognitives et computationnelles, 29, rue d\u2019Ulm, Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;2\/3&#8243;][vc_column_text]Do you think you make all your decisions rationally? Imagine that you can choose between different fruits: you probably have a pre-established order of preferences and you will make your choice accordingly. If you prefer apples to bananas, and bananas to cherries, chances are you prefer apples to cherries. But is this true for economic choices? Can your experience influence your decisions when it comes to money? These are the questions I addressed during my PhD, between cognitive neuroscience, mathematics and psychiatry. Using mathematical models, we showed that our choices are influenced by the context in which the values of the different alternatives were learned. First, we developed existing models and paradigms explaining decision-making strategies in a large sample of healthy volunteer participants, using recent tools such as large-scale online experiments. Then, we used innovative approaches to identify the links between the parameters of our decision-making models and reward-related pathological traits that may affect value learning. In the long term, this research will potentially help to develop new tools to characterize phenotypes of several pathologies and behavioral disorders, as well as improve patients\u2019 treatment at the individual level.[\/vc_column_text][\/vc_column_inner][vc_column_inner width=&#8221;1\/3&#8243;][vc_single_image image=&#8221;16875&#8243; alignment=&#8221;center&#8221; onclick=&#8221;link_image&#8221;][\/vc_column_inner][\/vc_row_inner][vc_separator][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;16863&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Matthias DURRIEU<br \/>\n<\/strong>Bases comportementales, mol\u00e9culaires et cellulaires de l&#8217;apprentissage ambigu chez la Drosophile<\/p>\n<p>Directeur de th\u00e8se\u2009: <strong>Guillaume\u00a0Isabel<\/strong><br \/>\nLieu de th\u00e8se : Centre de Recherches sur la Cognition Animale (UMR 5169), 169, avenue Marianne Grunberg-Manago, Toulouse[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;2\/3&#8243;][vc_column_text]Associative learning is a well studied ability through which animals link sensory cues to biologically relevant features. However how animals overcome conflicting environmental cues remains unclear. Here we showed for the first time that fruit flies can solve seemingly complex forms of learning tasks, also known as non elemental learning. Using a dual approach of neurogenetic manipulations and modelling, we demonstrated that in order to solve such tasks, flies must learn not to respond to non reinforced stimuli, which is enabled by a gradual conditionned inhibition process driven by the differential recruitment of a single pair of inhibitory neurons, the Anterior Paired Lateral (APL) neurons.[\/vc_column_text][\/vc_column_inner][vc_column_inner width=&#8221;1\/3&#8243;][vc_single_image image=&#8221;16867&#8243; alignment=&#8221;center&#8221; onclick=&#8221;link_image&#8221;][\/vc_column_inner][\/vc_row_inner][vc_separator][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;16855&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>C\u00e9lia LACAUX<br \/>\n<\/strong>La fronti\u00e8re entre \u00e9veil et sommeil, une porte d&#8217;entr\u00e9e vers la cr\u00e9ativit\u00e9<\/p>\n<p>Directrice de th\u00e8se\u2009: <strong>Delphine\u00a0Oudiette<\/strong><br \/>\nLieu de th\u00e8se : Institut du Cerveau Paris, H\u00f4pital Piti\u00e9, 47 Bd de l&#8217;H\u00f4pital, Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;2\/3&#8243;][vc_column_text]Creativity is a critical human skill. Yet, despite its utter importance in our life, we have limited control over when creativity hits us: novel ideas often seem to pop out of nowhere in \u201cEureka! moments\u201d. What if we could find a way to summon our creative muse when we most need it? My research demonstrated that the transitory period between wakefulness and sleep serves as a gateway to creativity. I first demonstrated that patients suffering from narcolepsy, a sleep disorder characterized by multiple sleep attacks during the day, exhibited an increased creativity. I then confirmed this link between sleep onset and creativity in healthy individuals, finding that dozing for just one minute tripled the likelihood of solving a problem (compared to wakefulness). In the future, I hope to develop tools that will precisely target this creative window and awaken us in time to capture these flashes of inspiration before they vanish into the limbo of sleep.[\/vc_column_text][\/vc_column_inner][vc_column_inner width=&#8221;1\/3&#8243;][vc_single_image image=&#8221;16859&#8243; alignment=&#8221;center&#8221; onclick=&#8221;link_image&#8221;][\/vc_column_inner][\/vc_row_inner][vc_text_separator title=&#8221;2021&#8243;][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;14870&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Sarah MONDOLONI<br \/>\n<\/strong>Ro\u0302le des re\u0301cepteurs nicotiniques des circuits de l\u2019addiction a\u0300 la nicotine : une manipulation originale des re\u0301cepteurs gra\u0302ce a\u0300 la lumie\u0300re<\/p>\n<p><strong>\u00a0<\/strong>Directeur de th\u00e8se\u2009: <strong>Alexandre\u00a0Mourot<\/strong><br \/>\nLieu de th\u00e8se : Equipe neurophysiologie et comportement &#8211; Institut de biologie Paris Seine &#8211; Neuroscience Paris Seine (UMR 8246), 9 quai Saint Bernard, Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;2\/3&#8243;][vc_column_text]Nicotine has well known reinforcing as well as aversive properties. It acts through nicotinic acetylcholine receptors (nAChRs) to hijack motivation-related neuronal circuits, leading to addiction. In my PhD project, I implemented a new technology, that uses light to reversibly block the action of nicotine on nAChRs in specific brain circuits. I found that the rewarding effect of nicotine requires \u03b22 nAChRs expressed in the ventral tegmental area, while the aversive properties of the drug involve \u03b24 nAChRs of the interpeduncular nucleus.[\/vc_column_text][\/vc_column_inner][vc_column_inner width=&#8221;1\/3&#8243;][vc_single_image image=&#8221;14831&#8243; alignment=&#8221;center&#8221; onclick=&#8221;link_image&#8221;][\/vc_column_inner][\/vc_row_inner][vc_separator][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;14874&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Mostafa SAFAIE<br \/>\n<\/strong>Embodied timing and the contribution of the dorsal striatum<strong><br \/>\n<\/strong><\/p>\n<p>Directeur de th\u00e8se\u2009: <strong>David\u00a0Robbe<\/strong><br \/>\nLieu de th\u00e8se : INMED, Marseille[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;2\/3&#8243;][vc_column_text]In this work, we first attempted to determine whether there is an internal mechanism which can provide a measure of time that drives behavior. Multiple experiments designed to interfere with the usage of stereotyped motor routines all led to a drastic decline in temporal accuracy, suggesting that accurate timing requires stereotyped motor routines. Then, we studied the function of the dorsal striatum in the learning and execution of these routines. We showed that after permanent lesions of the striatum, the only consistent effect is an oversensitivity to the effort invested in motor routines.[\/vc_column_text][\/vc_column_inner][vc_column_inner width=&#8221;1\/3&#8243;][vc_single_image image=&#8221;14858&#8243; alignment=&#8221;center&#8221; onclick=&#8221;link_image&#8221;][\/vc_column_inner][\/vc_row_inner][vc_separator][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;14878&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Robin VIGOUROUX<br \/>\n<\/strong>Diversite\u0301 des projections visuelles chez les verte\u0301bre\u0301s<strong><br \/>\n<\/strong><\/p>\n<p>Directeur de th\u00e8se\u2009: <strong>Kim\u00a0Nguyen-Ba-Charvet<\/strong><br \/>\nLieu de th\u00e8se : Institut de la Vision, 17 rue Moreau, Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;2\/3&#8243;][vc_column_text]The human visual system has a particularity that allows us to see in three dimensions (3D). Each eye sends part of its visual field to the same side of the brain (ipsilateral projections) and to the opposite side of the brain (contralateral projections). The fusion of these two projections, in each hemisphere, is the cellular basis for 3D vision. Interestingly, this ability to see in 3D is shared with most other mammals and is currently thought to coincide with the appearance of tetrapods. Thanks to a novel tissue clearing protocol (EyeDISCO) developed during my PhD, I was able to show that the cellular bases of depth perception arose in fish before the water-to-land transition, more than 450 million years ago. However, the molecular players responsible for these projections are not conserved in evolution.[\/vc_column_text][\/vc_column_inner][vc_column_inner width=&#8221;1\/3&#8243;][vc_single_image image=&#8221;14889&#8243; alignment=&#8221;center&#8221; onclick=&#8221;link_image&#8221;][\/vc_column_inner][\/vc_row_inner][vc_text_separator title=&#8221;2021&#8243;][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;13380&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Sophie BAGUR<\/strong><br \/>\nLes oscillations du bulbe olfactif : marqueurs et organisateurs des \u00e9tats c\u00e9r\u00e9braux li\u00e9s \u00e0 l&#8217;\u00e9motion<\/p>\n<p>Directeur de th\u00e8se\u2009: <strong>Thierry GALLOPIN<\/strong><br \/>\nLieu de th\u00e8se : Equipe MOBS (Memory, Oscillations, Brain States), UMR 8249, Plasticit\u00e9 du cerveau, Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;2\/3&#8243;][vc_column_text]Bodily changes are hallmarks of emotions and have long been suggested to feedback to impact neural processing, but no mechanism has ever been shown. In mice, very regular 4Hz breathing during fear-related freezing behavior is transmitted via the olfactory system to the prefrontal cortex where it entrains neural activity. Optogenetic perturbation of this rhythm demonstrates that it plays a key role in maintaining sustained freezing episodes, independent of their initiation. These results point to a brain-body-brain loop in which the initiation of emotional behavior engenders somatic changes which then feedback to the cortex to directly participate in sustaining emotional states.[\/vc_column_text][\/vc_column_inner][vc_column_inner width=&#8221;1\/3&#8243;][vc_single_image image=&#8221;13384&#8243; alignment=&#8221;center&#8221; onclick=&#8221;link_image&#8221;][\/vc_column_inner][\/vc_row_inner][vc_separator][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;13389&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>K\u00e9vin CARVALHO<\/strong><br \/>\nR\u00f4le des r\u00e9cepteurs ad\u00e9nosinergiques A2A dans la maladie d\u2019Alzheimer .<\/p>\n<p>Directeur de th\u00e8se\u2009: <strong>David BLUM<\/strong><br \/>\nLieu de th\u00e8se : &#8220;Alzheimer &amp; Tauopathies&#8221;, UMR-S 1172 &#8211; Centre de recherche Lille Neuroscience &amp; Cognition, Lille[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;2\/3&#8243;][vc_column_text]Neuronal accumulation of pathological tau drives cognitive decline in Alzheimer\u2019s disease (AD) and Tauopathies. Interestingly, progression of tau pathology is correlated to a neuronal and astrocytic upregulation of the druggable adenosine A2A receptor (A2AR). During my PhD, we were able to demonstrate that the latter is instrumentally involved in Tau-induced memory deficits, through synaptic loss and pathological worsening. These results support that repurposing A2AR antagonists is a valuable therapeutic strategy in AD and Tauopathies.[\/vc_column_text][\/vc_column_inner][vc_column_inner width=&#8221;1\/3&#8243;][vc_single_image image=&#8221;13393&#8243; alignment=&#8221;center&#8221; onclick=&#8221;link_image&#8221;][\/vc_column_inner][\/vc_row_inner][vc_separator][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;13406&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Ana UZQUIANO LOPEZ<\/strong><br \/>\nProgenitor cell mechanisms contributing to cortical malformations: studying the role of the heterotopia gene Eml1\/EML1 in radial glia.<\/p>\n<p>Directrice de th\u00e8se\u2009: <strong>Fiona FRANCIS<\/strong><br \/>\nLieu de th\u00e8se : Cortical development and pathology team, Institut du Fer \u00e0 Moulin, Inserm U1270, Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;2\/3&#8243;][vc_column_text]Cortical development relies on a series of finely regulated steps, including neuronal progenitor cell function and neuronal migration. Perturbation of these steps results in severe cortical malformations associated with epilepsy and intellectual disability. Mutations in the microtubule-associated protein Eml1 result in heterotopia (mispositioned neurons) in mouse and man. During my PhD, I used a wide range of approaches (imaging, mass spectrometry, biochemistry, genetics) to elucidate the role of Eml1 in neuronal progenitors. My results unraveled its role in the formation of primary cilia, critical for progenitor function, underpinning subcellular patho-mechanisms leading to severe heterotopia.[\/vc_column_text][\/vc_column_inner][vc_column_inner width=&#8221;1\/3&#8243;][vc_single_image image=&#8221;13417&#8243; alignment=&#8221;center&#8221; onclick=&#8221;link_image&#8221;][\/vc_column_inner][\/vc_row_inner][vc_text_separator title=&#8221;2019&#8243;][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;11295&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Lucie BERKOVITCH<\/strong><br \/>\n<em>Non-conscious processing, attentional amplification and conscious access: experimental investigations in healthy controls and patients with schizophrenia<\/em><\/p>\n<p>Directeur de th\u00e8se\u2009: <strong>Stanislas Dehaene<\/strong><br \/>\nLieu de th\u00e8se : Unit\u00e9 INSERM-CEA 562 &#8220;NeuroimagerieCognitive&#8221;, Gif-sur-Yvette[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;2\/3&#8243;][vc_column_text]In many studies, persons with schizophrenia exhibit an elevated threshold for conscious perception while subliminal processing is preserved. In this thesis, we explored and compared conscious access mechanisms and non-conscious processing in healthy controls and persons with schizophrenia. In particular, we found that the disruption of conscious access in schizophrenia was associated with cerebral dysconnectivity and abnormal attentional amplification.[\/vc_column_text][\/vc_column_inner][vc_column_inner width=&#8221;1\/3&#8243;][vc_single_image image=&#8221;10948&#8243; alignment=&#8221;center&#8221; onclick=&#8221;link_image&#8221;][\/vc_column_inner][\/vc_row_inner][vc_separator][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;10952&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Vincent ROBERT<\/strong><br \/>\n<em>Hypothalamic control of hippocampal area CA2 activity<\/em><\/p>\n<p>Directrice de th\u00e8se\u2009: <strong>Rebecca Piskorowski<\/strong><br \/>\nLieu de th\u00e8se : Institut de Psychiatrie et Neurosciences de Paris, INSERM U894, Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;2\/3&#8243;][vc_column_text]Memory formation requires information processing by the hippocampus, which is influenced by other brain areas sending long-range inputs such as the supramammillary nucleus of the hypothalamus (SuM). During my PhD, I used electrophysiology and optogenetics to decipher the neuronal circuit engaged by the SuM in hippocampal area CA2. My results show that the SuM input recruits feedforward inhibition through parvalbumin-expressing basket cells that enhances spike fidelity of CA2 pyramidal neurons, and shapes their bursting activity in conditions of elevated cholinergic tone.[\/vc_column_text][\/vc_column_inner][vc_column_inner width=&#8221;1\/3&#8243;][vc_single_image image=&#8221;10960&#8243; alignment=&#8221;center&#8221; onclick=&#8221;link_image&#8221;][\/vc_column_inner][\/vc_row_inner][vc_separator][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;10956&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Laurie ROBIN<\/strong><br \/>\n<em>Roles of astroglialcannabinoid type 1 receptors (CB1) in memory and synaptic plasticity<\/em><\/p>\n<p>Directeur de th\u00e8se\u2009: <strong>Giovanni Marsicano<\/strong><br \/>\nLieu de th\u00e8se : Neurocentre Magendie, Equipe Endocannabinoide et\u00a0Neuroadaptation, INSERM U1012, Bordeaux[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;2\/3&#8243;][vc_column_text]Type-1 cannabinoid receptors (CB1R) are important modulators of physiological functions. CB1R are expressed in different types of neurons but also in the astrocytes. However, the physiological roles of astroglial CB1R of the hippocampus in synaptic plasticity and memory remained unknown. By using behavior, electrophysiology, imaging and biochemistry, my PhD work showed that physiological activation of astroglial CB1R in the hippocampus is necessary for long-term object recognition memory consolidation\u00a0via\u00a0a mechanism involving the supply of D-serine to synaptic NMDARs and, consequently, the regulation of hippocampal synaptic plasticity. Thus, astroglial CB1R contribute to the time and space-specific synaptic actions of astrocytes to promote memory formation.<\/p>\n<p>&nbsp;<\/p>\n<p><em>Cr\u00e9dit photo : \u00a9 Charlie Padgett<\/em>[\/vc_column_text][\/vc_column_inner][vc_column_inner width=&#8221;1\/3&#8243;][vc_single_image image=&#8221;10964&#8243; alignment=&#8221;center&#8221; onclick=&#8221;link_image&#8221;][\/vc_column_inner][\/vc_row_inner][vc_text_separator title=&#8221;2018&#8243;][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;9391&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Benjamin Compans<\/strong><br \/>\n<em>R\u00f4le physiologique de l\u2019organisation des r\u00e9cepteurs AMPA \u00e0 l\u2019\u00e9chelle nanom\u00e9trique \u00e0 l\u2019\u00e9tat basal et lors des plasticit\u00e9s synaptiques.<\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>Eric Hosy<\/strong><br \/>\nLieu de th\u00e8se : Institut Interdisciplinaire de NeuroSciences (IINS), CNRS UMR 5297, Universit\u00e9 de Bordeaux, Bordeaux[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;2\/3&#8243;][vc_column_text]AMPA-type glutamate receptors (AMPAR) mediate most fast excitatory transmission. Recently, super-resolution microscopy techniques revealed the molecular clusterization of AMPAR at synapses, opening to a new vision of synaptic transmission properties. During my PhD, I combined super-resolution microscopy and electrophysiology to demonstrate that AMPAR nanodomain misalignment regarding glutamate release site strongly impairs synaptic transmission efficiency. In addition, I described a 2-step synaptic molecular reshuffling during Long-Term Depression with (i) an AMPAR nanodomain reorganization and (ii) an AMPAR surface diffusion increase, triggering a modification of synaptic integration.<\/p>\n<p>&nbsp;<\/p>\n<p><em>Cr\u00e9dit photo : \u00a9 Benjamin Compans, Interdisciplinary Institute for Neuroscience, Bordeaux\u00a0<\/em>[\/vc_column_text][\/vc_column_inner][vc_column_inner width=&#8221;1\/3&#8243;][vc_single_image image=&#8221;9408&#8243; alignment=&#8221;center&#8221; onclick=&#8221;link_image&#8221;][\/vc_column_inner][\/vc_row_inner][vc_separator][vc_row_inner css=&#8221;.vc_custom_1504620059287{margin-bottom: 0px !important;}&#8221;][vc_column_inner width=&#8221;1\/4&#8243; css=&#8221;.vc_custom_1504620414768{margin-bottom: -20px !important;}&#8221;][vc_single_image image=&#8221;9387&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243; css=&#8221;.vc_custom_1504620494103{padding-bottom: -20px !important;}&#8221;][vc_column_text]<strong>Baptiste Lib\u00e9-Philippot<\/strong><br \/>\n<em>Etude du r\u00f4le de prot\u00e9ines apparent\u00e9es aux cadh\u00e9rines dans le d\u00e9veloppement des interneurones du cortex auditif.<\/em><\/p>\n<p>Directrice de th\u00e8se : <strong>Christine Petit<\/strong><br \/>\nLieu de th\u00e8se : Unit\u00e9 de G\u00e9n\u00e9tique et Physiologie de l&#8217;Audition, Institut Pasteur, Paris<br \/>\n<!--<img loading=\"lazy\" decoding=\"async\" class=\"wp-image-7605 alignleft\" src=\"https:\/\/www.neurosciences.asso.fr\/wp-content\/uploads\/2014\/11\/GABA_spinalcord_Sternberg.png\" alt=\"\" width=\"92\" height=\"196\" srcset=\"https:\/\/www.neurosciences.asso.fr\/wp-content\/uploads\/2014\/11\/GABA_spinalcord_Sternberg.png 927w, https:\/\/www.neurosciences.asso.fr\/wp-content\/uploads\/2014\/11\/GABA_spinalcord_Sternberg-141x300.png 141w, https:\/\/www.neurosciences.asso.fr\/wp-content\/uploads\/2014\/11\/GABA_spinalcord_Sternberg-768x1637.png 768w, https:\/\/www.neurosciences.asso.fr\/wp-content\/uploads\/2014\/11\/GABA_spinalcord_Sternberg-480x1024.png 480w\" sizes=\"auto, (max-width: 92px) 100vw, 92px\" \/>\n<strong>Short abstact:<\/strong>\nThe neural networks that underlie locomotion are complex and require integration of sensory input and physiological state, however, how this integration occurs is poorly understand. During my PhD, I developed tools to manipulate the activity of genetically-specified populations of neurons in the zebrafish spinal cord and monitor behavioral output in a quantitative and high-throughput manner. I then investigated how premotor interneurons and sensory neurons that interface between cerebrospinal fluid and motor circuits contribute to spinal cord function. Together, these results allow a more complete picture of how dynamic interactions shape locomotor output\u00a0in vivo.-->[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner css=&#8221;.vc_custom_1504620059287{margin-bottom: 0px !important;}&#8221;][vc_column_inner width=&#8221;2\/3&#8243; css=&#8221;.vc_custom_1504620414768{margin-bottom: -20px !important;}&#8221;][vc_column_text]In early-onset genetic forms of deafness, deficits of the auditory sensory organ are sufficient to account for the hearing impairment. The possibility that intrinsic deficits of the auditory central system coexist with the peripheral deficits is almost unexplored. My PhD work show, in mouse, an intrinsic role of two proteins (cdhr23 and cdhr15) in the development of the parvalbumin interneuron of the auditory cortex. These proteins are associated to inherited deafness genes and are critically involved in the mechano-electrical transduction of the auditory sensory cells. These results &#8211; if confirmed in human &#8211; should be considered in hearing rehabilitation strategies. They also shed new light on the development of the cortical (inhibitory) interneurons.[\/vc_column_text][\/vc_column_inner][vc_column_inner width=&#8221;1\/3&#8243;][vc_single_image image=&#8221;9383&#8243; alignment=&#8221;center&#8221; onclick=&#8221;link_image&#8221;][\/vc_column_inner][\/vc_row_inner][vc_separator][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;9395&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Laurie-Anne Sapey-Triomphe<\/strong><br \/>\n<em>Inf\u00e9rence et apprentissage perceptifs dans l&#8217;autisme : une approche comportementale et neurophysiologique.<\/em><\/p>\n<p>Directrice\u00a0de th\u00e8se : <strong>Christina Schmitz<\/strong><br \/>\nLieu de th\u00e8se : Equipe Dynamique C\u00e9r\u00e9brale et Cognition, Centre de Recherche en Neurosciences de Lyon (CRNL), INSERM U1028 &#8211; CNRS UMR5292, Bron[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;2\/3&#8243;][vc_column_text]Suboptimal perceptual learning has been hypothesized to be at the core of autism spectrum disorders (ASD). My thesis aimed at empirically testing and characterizing this phenomenon. Following a multilevel approach including behavioural measures, neuroimaging experiments and computational models, we showed that adults with ASD are impaired in the way they integrate sensory information with prior knowledge. Our approach shed light on the behavioural, neural an molecular mechanisms underlying perceptual learning in ASD.<\/p>\n<p>&nbsp;<\/p>\n<p><em>Cr\u00e9dit photo : \u00a9 Fondation L&#8217;Or\u00e9al<\/em>[\/vc_column_text][\/vc_column_inner][vc_column_inner width=&#8221;1\/3&#8243;][vc_single_image image=&#8221;9399&#8243; alignment=&#8221;center&#8221; onclick=&#8221;link_image&#8221;][\/vc_column_inner][\/vc_row_inner][vc_text_separator title=&#8221;2017&#8243;][vc_row_inner css=&#8221;.vc_custom_1504620059287{margin-bottom: 0px !important;}&#8221;][vc_column_inner width=&#8221;1\/4&#8243; css=&#8221;.vc_custom_1504620414768{margin-bottom: -20px !important;}&#8221;][vc_single_image image=&#8221;7080&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243; css=&#8221;.vc_custom_1504620494103{padding-bottom: -20px !important;}&#8221;][vc_column_text]<strong>Jenna Sternberg<\/strong><br \/>\n<em>Neuronal populations underlying locomotion in zebrafish.<\/em><\/p>\n<p>Directreur de th\u00e8se : <strong>Hugues Pascal-Moussellard<\/strong><br \/>\nLieu de th\u00e8se : Institut du Cerveau et de la Moelle \u00e9pini\u00e8re, Paris<br \/>\n<!--<img loading=\"lazy\" decoding=\"async\" class=\"wp-image-7605 alignleft\" src=\"https:\/\/www.neurosciences.asso.fr\/wp-content\/uploads\/2014\/11\/GABA_spinalcord_Sternberg.png\" alt=\"\" width=\"92\" height=\"196\" srcset=\"https:\/\/www.neurosciences.asso.fr\/wp-content\/uploads\/2014\/11\/GABA_spinalcord_Sternberg.png 927w, https:\/\/www.neurosciences.asso.fr\/wp-content\/uploads\/2014\/11\/GABA_spinalcord_Sternberg-141x300.png 141w, https:\/\/www.neurosciences.asso.fr\/wp-content\/uploads\/2014\/11\/GABA_spinalcord_Sternberg-768x1637.png 768w, https:\/\/www.neurosciences.asso.fr\/wp-content\/uploads\/2014\/11\/GABA_spinalcord_Sternberg-480x1024.png 480w\" sizes=\"auto, (max-width: 92px) 100vw, 92px\" \/>\n<strong>Short abstact:<\/strong>\nThe neural networks that underlie locomotion are complex and require integration of sensory input and physiological state, however, how this integration occurs is poorly understand. During my PhD, I developed tools to manipulate the activity of genetically-specified populations of neurons in the zebrafish spinal cord and monitor behavioral output in a quantitative and high-throughput manner. I then investigated how premotor interneurons and sensory neurons that interface between cerebrospinal fluid and motor circuits contribute to spinal cord function. Together, these results allow a more complete picture of how dynamic interactions shape locomotor output\u00a0in vivo.-->[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner css=&#8221;.vc_custom_1504620059287{margin-bottom: 0px !important;}&#8221;][vc_column_inner width=&#8221;2\/3&#8243; css=&#8221;.vc_custom_1504620414768{margin-bottom: -20px !important;}&#8221;][vc_column_text]The neural networks that underlie locomotion are complex and require integration of sensory input and physiological state, however, how this integration occurs is poorly understand. During my PhD, I developed tools to manipulate the activity of genetically-specified populations of neurons in the zebrafish spinal cord and monitor behavioral output in a quantitative and high-throughput manner. I then investigated how premotor interneurons and sensory neurons that interface between cerebrospinal fluid and motor circuits contribute to spinal cord function. Together, these results allow a more complete picture of how dynamic interactions shape locomotor output\u00a0in vivo.[\/vc_column_text][\/vc_column_inner][vc_column_inner width=&#8221;1\/3&#8243;][vc_single_image image=&#8221;7678&#8243; alignment=&#8221;center&#8221; onclick=&#8221;link_image&#8221;][\/vc_column_inner][\/vc_row_inner][vc_separator][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;7076&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Christophe Varin<\/strong><br \/>\n<em>Contribution de noyaux hypothalamiques et de leur interconnexion \u00e0 la r\u00e9gulation du sommeil.<\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>Patrice Fort <\/strong>(\u00c9quipe SLEEP)<br \/>\nLieu de th\u00e8se : Centre de Recherche en Neurosciences de Lyon, Lyon[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;2\/3&#8243;][vc_column_text]Sleep serves universal needs and dedicated biological functions. However the precise mechanisms contributing to the alternation between vigilance states remain unresolved. During this thesis, we progressed in understanding these mechanisms by demonstrating that glucose can facilitate sleep onset by directly exciting sleep-promoting neurons within the VLPO, and by dissecting the contribution of MCH neurons to sleep regulation and in particular to slow-wave sleep control through their efferent connection to the VLPO.[\/vc_column_text][\/vc_column_inner][vc_column_inner width=&#8221;1\/3&#8243;][vc_single_image image=&#8221;7683&#8243; alignment=&#8221;center&#8221; onclick=&#8221;link_image&#8221;][\/vc_column_inner][\/vc_row_inner][vc_separator][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;7072&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Samira Ztaou<\/strong><br \/>\n<em>Implication des interneurones cholinergiques striataux dans la physiopathologie de la maladie de Parkinson : Etude optog\u00e9n\u00e9tique, pharmacologique et comportementale.<\/em><\/p>\n<p>Directrice\u00a0de th\u00e8se : <strong>Marianne Amalric<\/strong><br \/>\nLieu de th\u00e8se : Laboratoire de Neurosciences Cognitives LNC UMR 7291, Aix-Marseille[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;2\/3&#8243;][vc_column_text]Over the last decade, striatal cholinergic interneurons (ChIs) have reemerged as key actors in the pathophysiology\u00a0 of movement disorders. Current views suggest that an imbalance between acetylcholine and dopamine activity in the striatum is central to the development of symptoms in Parkinson\u2019s disease (PD). Using optogenetics, \u00a0pharmacological \u00a0and behavioral approaches,\u00a0 my PhD work \u00a0showed \u00a0that \u00a0ChIs \u00a0photoinhibition\u00a0 \u00a0and \u00a0blockade \u00a0of \u00a0postsynaptic\u00a0 \u00a0M1 \u00a0and \u00a0M4 \u00a0muscarinic cholinergic \u00a0receptors \u00a0alleviate \u00a0motor, \u00a0cognitive \u00a0and emotional \u00a0deficits \u00a0observed \u00a0in different \u00a0mice models \u00a0of \u00a0PD. \u00a0These \u00a0results \u00a0give \u00a0new \u00a0insights \u00a0on \u00a0the \u00a0role \u00a0of \u00a0ChIs \u00a0in \u00a0normal \u00a0condition \u00a0and pathophysiology mechanisms of PD.[\/vc_column_text][\/vc_column_inner][vc_column_inner width=&#8221;1\/3&#8243;][vc_single_image image=&#8221;7689&#8243; alignment=&#8221;center&#8221; onclick=&#8221;link_image&#8221;][\/vc_column_inner][\/vc_row_inner][vc_text_separator title=&#8221;2016&#8243;][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;4821&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Morgane BOILLOT<\/strong><br \/>\n<em>Etude de la fonction de la prot\u00e9ine LGI1 impliqu\u00e9e dans les \u00e9pilepsies du lobe temporal.<\/em><\/p>\n<p>Directrice de th\u00e8se : <strong>St\u00e9phanie Baulac<\/strong><br \/>\nLieu de th\u00e8se : Institut du Cerveau et de la Moelle \u00e9pini\u00e8re, H\u00f4pital de la Piti\u00e9-Salp\u00eatri\u00e8re, U1127, UMR7225, UMRS1127, Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;4813&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Guy BOUVIER<\/strong><br \/>\n<em>Synaptic plasticity rule between parallel fibres and Purkinje cells in <\/em><em>the cerebellum.<\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>Mariano Casado<\/strong><br \/>\nLieu de th\u00e8se : Institut de Biologie de l&#8217;Ecole Normale Sup\u00e9rieure, CNRS UMR 8197 \/INSERM U 1024, Cerebellum group, Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;4817&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Gaetan de LAVILLEON<\/strong><br \/>\n<em>De la corr\u00e9lation \u00e0 la causalit\u00e9 : apports des interfaces cerveaux-machines sur l\u2019\u00e9tude des r\u00e9activations des cellules de lieu et des oscillations lentes du sommeil.<\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>Karim Benchenane<\/strong><br \/>\nLieu de th\u00e8se : Plasticit\u00e9 du Cerveau, ESPCI ParisTech, UMR8249, Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_text_separator title=&#8221;2015&#8243;][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;1628&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Elaine ASTRAND<\/strong><br \/>\n<em>Real-time readout of neural contents in visual perception and selection in the non-human primate.<\/em><\/p>\n<p>Directrice de th\u00e8se : <strong>Suliann Ben Hamed<\/strong><br \/>\nLieu de th\u00e8se : Institut des Sciences Cognitives, Universit\u00e9 Claude Bernard Lyon 1, Bron[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;1631&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Cl\u00e9mence BERNARD<\/strong><br \/>\n<em>Otx2-glycosaminoglycan interaction to regulate visual cortex plasticity.<\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>Ariel Di Nardo<\/strong><br \/>\nLieu de th\u00e8se : CIRB, Coll\u00e8ge de France, Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;1634&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Kevin RICHETIN<\/strong><br \/>\n<em>Modulation de la neurogen\u00e8se hippocampique adulte et r\u00e9cup\u00e9ration mn\u00e9sique dans un mod\u00e8le murin de la Maladie d\u2019Alzheimer.<\/em><\/p>\n<p>Directrice de th\u00e8se : <strong>Claire Rampon<\/strong><br \/>\nLieu de th\u00e8se : Centre de Recherches sur la Cognition Animale, Universit\u00e9 Paul Sabatier Toulouse 3, Toulouse[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner][\/vc_column_inner][vc_text_separator title=&#8221;2014&#8243;][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5482&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Julien COURTIN<\/strong><br \/>\nR\u00f4le des interneurones corticaux parvalbuminerques dans les comportements de peur.<\/p>\n<p>Directeur de th\u00e8se : <strong>Cyril Herry<\/strong><br \/>\nLieu de th\u00e8se : Universit\u00e9 de Bordeaux, Neurocentre Magendie \u2013 INSERM U.862, Physiopathologie de l\u2019addiction, Bordeaux[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5478&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Fanny LANGLET<\/strong><br \/>\n<em>Etude de l\u2019interface Sang-Noyau Arqu\u00e9 Hypothalamique au cours d&#8217;un d\u00e9s\u00e9quilibre \u00e9nerg\u00e9tique : Plasticit\u00e9 de l\u2019\u00e9minence m\u00e9diane et impact sur la r\u00e9gulation de la prise alimentaire.<\/em><\/p>\n<p>Directrice de th\u00e8se : <strong>B\u00e9n\u00e9dicte Dehouck<br \/>\n<\/strong>Lieu de th\u00e8se : Inserm U837, JPARC, Equipe 2, \u00ab D\u00e9veloppement et Plasticit\u00e9 du cerveau post-natal \u00bb, Lille[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5486&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Alexandre PARPALEIX<\/strong><br \/>\n<em>Imagerie biphotonique de la Po2 intrac\u00e9r\u00e9brale : une mesure de l&#8217;activit\u00e9 neuronale.<\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>Serge Charpak<\/strong><br \/>\nLieu de th\u00e8se : Universit\u00e9 Paris Descartes, INSERM U1128, Neurophysiology &amp; New Microscopy Laboratory, 45 Rue des Saints P\u00e8res, Paris.[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_text_separator title=&#8221;2013&#8243;][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5446&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Marie DECK<\/strong><br \/>\n<em>Etude du guidage des axones corticofuges pionniers.<\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>GAREL Sonia<\/strong><br \/>\nLieu de th\u00e8se : Institut de Biologie de l\u2019Ecole Normale Sup\u00e9rieure &#8211; Equipe \u00ab Brain development and plasticity \u00bb[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5450&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Emilie MAC\u00c9<\/strong><br \/>\n<em>D\u00e9veloppement d&#8217;une nouvelle modalit\u00e9 d&#8217;imagerie fonctionnelle c\u00e9r\u00e9brale et \u00e9tude de l&#8217;\u00e9lasticit\u00e9 du cerveau par ultrasons.<\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>Mickael Tanter<\/strong><br \/>\nLieu de th\u00e8se : Institut Langevin[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5466&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Stefano PALMINTERI<\/strong><br \/>\n<em>Neural underpinnings of human reinforcement-based learning and decision making in humans.<\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>Pessiglione Mathias<\/strong><br \/>\nLieu de th\u00e8se : Motivation, Brain et Behavior (MBB)\u00a0team, Institut du Cerveau et de la Moelle (ICM), H\u00f4pital de la Piti\u00e9-Salp\u00eatri\u00e8re, 75013, Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_text_separator title=&#8221;2012&#8243;][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5526&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Gabrielle GIRARDEAU<\/strong><br \/>\n<em>Bases neurales de la consolidation mn\u00e9sique chez le rat : r\u00f4le et physiologie des oscillations hippocampiques rapides<\/em>.<\/p>\n<p>Directeur de th\u00e8se : <strong>Micha\u00ebl Zugaro<\/strong><br \/>\nLieu de th\u00e8se : LPPA (Laboratoire de Physiologie de la Perception et de l&#8217;Action), Coll\u00e8ge de France, Paris<\/p>\n<p>&nbsp;<\/p>\n<p><strong>\u00a0<\/strong>[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5530&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Benjamin MORILLON<\/strong><br \/>\n<em>R\u00f4le des oscillations corticales dans l&#8217;asym\u00e9trie fonctionnelle du traitement de la parole.<\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>Anne-Lise Giraud<\/strong><br \/>\nLieu de th\u00e8se : Laboratoire de Neurosciences Cognitives, Inserm U960, Ecole Normale Sup\u00e9rieure, Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5534&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Nicolas RENIER<\/strong><br \/>\n<em>D\u00e9veloppement et fonction des commissures c\u00e9r\u00e9brales.<\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>Alain Ch\u00e9dotal<\/strong><br \/>\nLieu de th\u00e8se : Institut de la Vision, UMR-S968, Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_text_separator title=&#8221;2011&#8243;][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5540&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Franck BIELLE<\/strong><br \/>\nContr\u00f4le du d\u00e9veloppement des projections axonales thalamo-corticales par une migration cellulaire tangentielle : r\u00f4les atypiques de Slit1 et Slit2.<\/p>\n<p>Directeur de th\u00e8se : <strong>Sonia Garel<\/strong><br \/>\nLieu de th\u00e8se : D\u00e9veloppement et plasticit\u00e9 du cerveau, Institut de Biologie de l\u2019Ecole Normale Sup\u00e9rieure, CNRS UMR 8197 &#8211; INSERM U.1024, Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5544&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Julien BOUVIER<\/strong><br \/>\n<em>Dissection g\u00e9n\u00e9tique du g\u00e9n\u00e9rateur central respiratoire chez la souris : neurones rythmog\u00e8nes et synchronisation bilat\u00e9rale.<\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>Gilles Fortin<\/strong><br \/>\nLieu de th\u00e8se : Neurobiologie &amp; D\u00e9veloppement, Institut F\u00e9d\u00e9ratif de Neurobiologie Alfred Fessard, CNRS UPR 3294, Gif Sur Yvette[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5548&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Mateo VELEZ-FORT<\/strong><br \/>\n<em>Signalisation entre neurones et cellules NG2 au cours du d\u00e9veloppement postnatal du cerveau.<\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>Maria Cecilia Angulo<\/strong><br \/>\nLieu de th\u00e8se : Neurophysiologie et nouvelles microscopies, Universit\u00e9 Paris Descartes, INSERM U. 603 &#8211; CNRS UMR 8154, Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_text_separator title=&#8221;2010&#8243;][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5554&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>C\u00e9line BIDORET<\/strong><br \/>\n<em>Fonction des r\u00e9cepteurs NMDA pr\u00e9synaptiques dans la plasticit\u00e9 du cervelet.<\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>Mariano Casado<\/strong><br \/>\nLieu de th\u00e8se : Equipe Cervelet, Laboratoire de Neurobiologie, Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5558&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Camille BOUTIN<\/strong><br \/>\n<em>Contr\u00f4le mol\u00e9culaire de la neurogen\u00e8se postnatale chez la souris : Etude du r\u00f4le du facteur de transcription NeuroD1 <\/em><em>dans la diff\u00e9renciation neuronale par une nouvelle approche in vivo.<\/em><\/p>\n<p>Directeur de th\u00e8se :<strong>Harold Cremer<\/strong><br \/>\nLieu de th\u00e8se : Contr\u00f4le mol\u00e9culaire de la Neurogen\u00e8se \u2013 IBDML Parc Scientifique de Luminy Marseille[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5562&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Marc GIELEN<\/strong><br \/>\n<em>M\u00e9canismes mol\u00e9culaires du contr\u00f4le de l\u2019activit\u00e9 des r\u00e9cepteurs NMDA.<\/em><\/p>\n<p>Directeur de th\u00e8se :<strong> Pierre Paoletti<\/strong><br \/>\nLieu de th\u00e8se : Laboratoire de Neurobiologie CNRS UMR 8544, ENS, Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5566&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Adrien PEYRACHE<\/strong><br \/>\n<em>Influence du Sommeil dans le R\u00e9seau Hippocampo-Prefrontal : Implication dans la Consolidation Mn\u00e9sique et l\u2019Apprentissage.<\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>Sidney Wiener<\/strong><br \/>\nLieu de th\u00e8se : Laboratoire de Physiologie de la Perception et de l&#8217;Action, Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_text_separator title=&#8221;2009&#8243;][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5575&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Mathieu LETELLIER<\/strong><br \/>\n<em>Synaptogen\u00e8se et N\u00e9osynaptogen\u00e8se dans le syst\u00e8me olivo-c\u00e9r\u00e9belleux des rongeurs.<\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>Ann Lohof<\/strong> et <strong>Jean Mariani<\/strong><br \/>\nLieu de th\u00e8se : D\u00e9veloppement et Vieillissement du syst\u00e8me nerveux &#8211; UMR 7102 Neurobiologie des Processus Adaptatifs- 9, quai St Bernard75005 PARIS[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5581&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Magalie Martineau<\/strong><br \/>\nCaract\u00e9risation pharmacologique et mol\u00e9culaire de la lib\u00e9ration et du transport v\u00e9siculaire de la D-s\u00e9rine dans les astrocytes.<\/p>\n<p>Directeur de th\u00e8se : <strong>Jean-Pierre Mothet<\/strong><br \/>\nLieu de th\u00e8se : Physiologie Int\u00e9gr\u00e9e des Syst\u00e8mes Neuroendocrines &#8211; Neurocentre Magendie -INSERM U862 &#8211; 146 rue L\u00e9o Saignat &#8211; 33077 Bordeaux[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5587&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Alexandre SURGET<\/strong><br \/>\n<em>\u00c9tude de l\u2019implication fonctionnelle de la neurogen\u00e8se hippocampique dans la pathophysiologie et le traitement de la d\u00e9pression.<\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>Catherine Belzung<\/strong><br \/>\nLieu de th\u00e8se : Troubles Affectifs &#8211; INSERM U930 &#8211; Parc de Grandmont &#8211; 37200 Tours[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_text_separator title=&#8221;2008&#8243;][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5593&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Brice Bathellier<\/strong><br \/>\n<em>Analysis of information processing in the olfactory bulb by in vivo experiments and theoretical modelling.<\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>W. Gerstner<\/strong><br \/>\nLieu de th\u00e8se : Calcul Neuromim\u00e9tique &#8211; D\u00e9partement Informatique et Communication &#8211; Ecublens &#8211; 1015 Lausanne[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5597&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>David Dupret<\/strong><br \/>\n<em>Etude des relations r\u00e9ciproques entre neurog\u00e9n\u00e8se adulte et fonctions hippocampiques.<\/em><\/p>\n<p>Directrice de th\u00e8se : <strong>Nora ABROUS<\/strong><br \/>\nLieu de th\u00e8se : Equipe Neurog\u00e9n\u00e8se et Physiopathologie &#8211; Centre de Recherche INSERM U862 &#8211; Fran\u00e7ois Magendie &#8211; 146 rue L\u00e9o Saignat 33077\u00a0Bordeaux[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5601&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>C\u00e9line Feillet<\/strong><br \/>\n<em>Synchronisation par la nourriture des horloges circadiennes centrales et p\u00e9riph\u00e9rique.<\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>Etienne Challet<\/strong><br \/>\nLieu de th\u00e8se : D\u00e9partement de Neurobiologie des Rythmes, 5 rue Blaise Pascal &#8211; 67084 Strasbourg[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5605&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Jeanne Tamar Paz<\/strong><br \/>\n<em>Epilepsie-absence et ganglions de la base: \u00e9tude intracellulaire in vivo de la propagation et du contr\u00f4le des activit\u00e9s paroxystiques.<\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>S. Charpier<\/strong><br \/>\nLieu de th\u00e8se : Cortex et \u00e9pilepsie INSERM U.667 &#8211; Dynamique et physiopathologie des r\u00e9seaux neuronaux, 11 place Marcelin Berthelot, Coll\u00e8ge de France- 75005 Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_text_separator title=&#8221;2007&#8243;][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5609&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Eric Burgui\u00e8re<\/strong><br \/>\n<em>R\u00f4le du cervelet dans la navigation : \u00e9tude du m\u00e9canisme cellulaire de d\u00e9pression synaptique \u00e0 long terme des fibres parall\u00e8les.<\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>L. Rondi-Reig<\/strong><br \/>\nLieu de th\u00e8se : \u00c9quipe m\u00e9moire spatiale et navigation Physiologie de la Perception et de l\u2019Action (LPPA), Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5613&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Samuel Lagier<\/strong><br \/>\n<em>L\u2019inhibition dans le bulbe olfactif de rongeur : du r\u00e9cepteur GABAergique aux oscillations du r\u00e9seau neuronal.<\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>P.-M. Lledo<\/strong><br \/>\nLieu de th\u00e8se : Laboratoire de Perception et M\u00e9moire, Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_text_separator title=&#8221;2006&#8243;][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5621&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Thomas Boulin<\/strong><br \/>\n<em>Guidage et maintenance d&#8217;axones \u00e0 la ligne m\u00e9diane de Caenorhabditis elegans m\u00e9di\u00e9s par des prot\u00e9ines \u00e0 domaines immunoglobuline.<\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>Oliver Hobert<\/strong><br \/>\nLieu de th\u00e8se : HHMI Center for neurobiology and behaviour, New York[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5625&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Delphine Charvin<\/strong><br \/>\n<em>Dopamine et d\u00e9g\u00e9n\u00e9rescence des neurones striataux dans la maladie de Huntington : vers l&#8217;identification de nouvelles cibles th\u00e9rapeutiques. <\/em><\/p>\n<p>Directrice de th\u00e8se : <strong>Jocelyne Caboche<\/strong><br \/>\nLieu de th\u00e8se : Equipe Signalisation Neuronale et R\u00e9gulation G\u00e9nique, Lab. de Neurobiologie des Processus Adaptatifs, UMR7102, CNRS, UPMC, Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5629&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>J\u00e9r\u00f4me Epsztein<\/strong><br \/>\n<em>R\u00f4le des r\u00e9cepteurs kainate dans la transmission synaptique : une \u00e9tude dans l&#8217;hippocampe de rat contr\u00f4le et dans un mod\u00e8le animal d&#8217;\u00e9pilepsie du lobe temporal.<\/em><\/p>\n<p>Directrice de th\u00e8se : <strong>Val\u00e9rie Crepel<\/strong><br \/>\nLieu de th\u00e8se : INSERM U29 &#8211; INMED, Marseille[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5645&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Antony Falluel Morel<\/strong><br \/>\n<em>\u00c9tude des effets neuroprotecteurs du peptide PACAP sur la mort neuronale induite par la c\u00e9ramides au cours du d\u00e9veloppement du cervelet. <\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>Bruno J. Gonzalez<\/strong><br \/>\nLieu de th\u00e8se : NSERM U413, Neuroendocrinologie cellulaire et mol\u00e9culaire, Mont-Saint-Aignan[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_text_separator title=&#8221;2005&#8243;][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5518&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Julie KNIAZEFF<\/strong><br \/>\n<em>Les r\u00e9cepteurs membranaires : oligom\u00e9risation et activation. Cas des r\u00e9cepteurs coupl\u00e9s aux prot\u00e9ines G de la classe C. De la fa\u00e7on de vivre \u00e0 deux: dialoguer ou s&#8217;ignorer.<\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>Jean-Philippe Pin<\/strong><br \/>\nLieu de th\u00e8se : CNRS UPR 2580, Montpellier[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5522&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Mathias PESSIGLIONE<\/strong><br \/>\n<em>Dopamine, ganglions de la base et s\u00e9lection de l&#8217;action: du singe MPTP au patient parkinsonien. Approche \u00e9lectrophysiologique et comportementale.<\/em><\/p>\n<p>Directeur de th\u00e8se : <strong>L\u00e9on Tremblay<\/strong><br \/>\nLieu de th\u00e8se : INSERM U.289, Paris[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_text_separator title=&#8221;2004&#8243;][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5500&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Bruno Bozon<\/strong><br \/>\n<em>Implication du g\u00e8ne imm\u00e9diat pr\u00e9coce zif268 dans la plasticit\u00e9 synaptique, la consolidation et la reconsolidation mn\u00e9sique.<\/em> Lieu de th\u00e8se : <strong>Laboratoire de Neurobiologie de l&#8217;Apprentissage et de la M\u00e9moire<\/strong>, CNRS UMR 8620, B\u00e2timent 446, Universit\u00e9 Paris-Sud, 91405 Orsay[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5504&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Etienne Herzog<\/strong><br \/>\n<em>Caract\u00e9risation des transporteurs v\u00e9siculaires du glutamate et diversit\u00e9 des syst\u00e8mes glutamatergiques dans le cerveau de rat.<\/em> Lieu de th\u00e8se\u00a0:\u00a0<strong>INSERM U.513<\/strong>, <strong>Neurobiologie et psychiatrie<\/strong>, Facult\u00e9 de M\u00e9decine, 8 Rue du G\u00e9n\u00e9ral Sarrail, 94010 Cr\u00e9teil Cedex.[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5508&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>St\u00e9phane Jamain<\/strong><br \/>\n<em>Identification de g\u00e8nes de pr\u00e9disposition \u00e0 l&#8217;autisme et la schizophr\u00e9nie.<\/em><\/p>\n<p>Lieu de th\u00e8se : <strong>INSERM E021<\/strong>,<strong> Laboratoire de G\u00e9n\u00e9tique Humaine et Fonctions Cognitives<\/strong>, 25 Rue du Docteur Roux, 75724 Paris Cedex 15[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5512&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Claire Wardak<\/strong><br \/>\n<em>Implication fonctionnelle de l&#8217;aire intrapari\u00e9tale lat\u00e9rale (LIP) et du champ oculomoteur frontal (FEF) dans l&#8217;attention visuelle s\u00e9lective chez le macaque.<\/em><\/p>\n<p>Lieu de th\u00e8se : <strong>CNRS UMR 5015<\/strong>, <strong>UCBL<\/strong>, <strong>Institut des Sciences Cognitives<\/strong>, 67 Bd Pinel, 69675 Bron Cedex[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_text_separator title=&#8221;2003&#8243;][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5496&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Jean Chemin<\/strong><\/p>\n<p><em>Propri\u00e9t\u00e9s fonctionnelles des sous-unit\u00e9s a1G , a1H et a1l des canaux calciques de type T.<\/em><\/p>\n<p>Lieu de th\u00e8se : <strong>CNRS UPR 1142<\/strong>, Institut de g\u00e9n\u00e9tique humaine, Montpellier[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5496&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Etienne Formstecher<\/strong><\/p>\n<p><em>R\u00f4le de PEA-15 dans la r\u00e9gulation de l&#8217;apoptose et de l&#8217;activit\u00e9 ERK\/MAP-Kinase.<\/em><br \/>\nLieu de th\u00e8se : <strong>Neuropharmacologie<\/strong>, Coll\u00e8ge de France, Paris.[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5496&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Cyril Monnier<\/strong><\/p>\n<p><em>Diversit\u00e9 fonctionnelle de l&#8217;int\u00e9gration synaptique dans le cortex visuel primairean<\/em><\/p>\n<p>Lieu de th\u00e8se : <strong>CNRS &#8211; IFR 2118<\/strong>, Institut Alfred Fessard Gif sur Yvette[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5496&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Arnauld Serg\u00e9<\/strong><br \/>\n<em>R\u00e9gulations de la dynamique membranaire de r\u00e9cepteurs de neurotransmetteurs par des prot\u00e9ines d&#8217;\u00e9chafaudage<\/em><\/p>\n<p>Lieu de th\u00e8se : <strong>CNRS UMR 5091<\/strong>, Physiologie cellulaire de la synapse, Bordeaux<br \/>\nM\u00e8l : arnauld@biophys.leidenuniv.nl[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_text_separator title=&#8221;2002&#8243;][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5496&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Nicolas Gompel<\/strong><br \/>\n<em>Quelques aspects du d\u00e9veloppement de la ligne lat\u00e9rale chez le poisson-z\u00e8bre Danio rerio (Hamilton, 1822), (Actinopt\u00e9rigien, Cyprinidae).<\/em><\/p>\n<p>Lieu de th\u00e8se : <strong>Universit\u00e9 Montpellier II.<\/strong>[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5496&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Julie Perroy<\/strong><br \/>\n<em>Le r\u00e9cepteur m\u00e9tabotropique du glutamate mGlu7\u00a0:\u00a0voie de signalisation et fonction dans les neurones.<\/em><\/p>\n<p>Lieu de th\u00e8se\u00a0:\u00a0<strong>Universit\u00e9 Montpellier II<\/strong>[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5496&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Micha\u00ebl Zugaro<\/strong><br \/>\n<em>Influences des signaux multisensoriels et moteurs dans l&#8217;\u00e9laboration des r\u00e9ponses des cellules de direction de la t\u00eate chez le rat.<\/em><\/p>\n<p>Lieu de th\u00e8se : <strong>Universit\u00e9 Pierre et Marie Curie\u00a0<\/strong>&#8211;\u00a0(Paris VI)[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_text_separator title=&#8221;2001&#8243;][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5496&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Peter Vanhoutte<\/strong><br \/>\nI<em>mplication du facteur de transcription ELK-1 dans la plasticit\u00e9 synaptique et la diff\u00e9renciation neuronale.<\/em><\/p>\n<p>Lieu de th\u00e8se : <strong>Laboratoire de Neurochimie-Anatomie, Institut des Neuroscience<\/strong>, 75005 Paris.[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5496&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Evelyne C\u00e9l\u00e9rier<\/strong><br \/>\n<em>Processus opposants\u00a0: de la tol\u00e9rance \u00e0 la sensibilisation. Application aux effets analg\u00e9siques des substances opiac\u00e9es.<\/em><\/p>\n<p>Lieu de th\u00e8se\u00a0:\u00a0<strong>INSERM U.259<\/strong>,\u00a0Universit\u00e9 Victor S\u00e9galen Bordeaux 2[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5496&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Julie Gr\u00e8zes<\/strong><br \/>\n<em>Neuroanatomie fonctionnelle des liens entre la perception et l&#8217;action chez l&#8217;homme.<\/em><\/p>\n<p>Lieu de th\u00e8se :<strong> INSERM U.280<\/strong>, Universit\u00e9 Claude Bernard Lyon I[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_text_separator title=&#8221;2000&#8243;][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5496&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Maria Cecilia Angulo<\/strong><br \/>\n<em>Etude des propri\u00e9t\u00e9s mol\u00e9culaires et fonctionnelles des synapses exitatrices entre les cellules pyramidales et les interneurones GABAergique du n\u00e9orcortex.<\/em><\/p>\n<p>Lieu de th\u00e8se\u00a0:\u00a0<strong>CNRS UMR\u00a0 7637 Neurobiologie<\/strong> (Paris)[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5496&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Olga Corti<\/strong><br \/>\n<em>Transfert de l&#8217;ADN compl\u00e9mentaire codant la tyrosine hydroxylase dans un mod\u00e8le exp\u00e9rimental dela maladie de Parkinson : contr\u00f4le de l&#8217;expression du transg\u00e8ne par la t\u00e9tracycline.<\/em><\/p>\n<p>Lieu de th\u00e8se\u00a0:\u00a0<strong>LGN, CNRS, UMR 9923<\/strong> (Paris)[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;5496&#8243;][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;][vc_column_text]<strong>Emmanuel Procyk<\/strong><br \/>\n<em>Apprentissage et r\u00e9solution de probl\u00e8mes s\u00e9quentiels chez le singe Rh\u00e9sus.<\/em><\/p>\n<p>Lieu de th\u00e8se\u00a0:\u00a0<strong>INSERM U94<\/strong> (Bron)[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][vc_row_inner][vc_column_inner][\/vc_column_inner][\/vc_row_inner][\/vc_tta_section][\/vc_tta_tabs][\/vc_column][\/vc_row]\n<\/div>","protected":false},"excerpt":{"rendered":"<p>[vc_row][vc_column][vc_empty_space height=&#8221;40&#8243;][vc_tta_tabs style=&#8221;modern&#8221; color=&#8221;white&#8221; spacing=&#8221;30&#8243; alignment=&#8221;center&#8221; active_section=&#8221;1&#8243; no_fill_content_area=&#8221;true&#8221;][vc_tta_section title=&#8221;Call for application&#8221; tab_id=&#8221;1700470175251-ac1f7025-c64f&#8221;][vc_column_text css=&#8221;&#8221;]In 2026, the French Neuroscience Society will offer PhD Thesis awards of 1000 \u20ac each, for a PhD work performed in France. &nbsp; Conditions Applicant must: \u00b7\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0Be a member of the French Neuroscience Society \u00b7\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0Have defended their thesis between January 1st and December [&hellip;]<\/p>\n","protected":false},"author":4,"featured_media":0,"parent":0,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"","meta":{"footnotes":""},"class_list":["post-2124","page","type-page","status-publish","hentry"],"publishpress_future_action":{"enabled":false,"date":"2026-04-28 08:11:49","action":"change-status","newStatus":"draft","terms":[],"taxonomy":"translation_priority"},"publishpress_future_workflow_manual_trigger":{"enabledWorkflows":[]},"_links":{"self":[{"href":"https:\/\/www.neurosciences.asso.fr\/en\/wp-json\/wp\/v2\/pages\/2124","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/www.neurosciences.asso.fr\/en\/wp-json\/wp\/v2\/pages"}],"about":[{"href":"https:\/\/www.neurosciences.asso.fr\/en\/wp-json\/wp\/v2\/types\/page"}],"author":[{"embeddable":true,"href":"https:\/\/www.neurosciences.asso.fr\/en\/wp-json\/wp\/v2\/users\/4"}],"replies":[{"embeddable":true,"href":"https:\/\/www.neurosciences.asso.fr\/en\/wp-json\/wp\/v2\/comments?post=2124"}],"version-history":[{"count":201,"href":"https:\/\/www.neurosciences.asso.fr\/en\/wp-json\/wp\/v2\/pages\/2124\/revisions"}],"predecessor-version":[{"id":28311,"href":"https:\/\/www.neurosciences.asso.fr\/en\/wp-json\/wp\/v2\/pages\/2124\/revisions\/28311"}],"wp:attachment":[{"href":"https:\/\/www.neurosciences.asso.fr\/en\/wp-json\/wp\/v2\/media?parent=2124"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}