Neuronal sub-populations in the nucleus accumbens represent distinct valence-free parameters to drive behavior
Erin Calipari· Vanderbilt University
Wed, Oct 26 · 06:15 UTC
Seminars and recordings
Erin Calipari· Vanderbilt University
Wed, Oct 26 · 06:15 UTC
David Freedman· University of Chicago
Wed, Sep 7 · 06:15 UTC
Liset M. de la Prida· Instituto Cajal - CSIC
Wed, May 4 · 06:15 UTC
Liset M de la Prida is a Physicist (1994) and PhD in Neuroscience (1998), who leads the Laboratorio de Circuitos Neuronales at the Instituto Cajal, Madrid, Spain (http://www.hippo-circuitlab.es). The main focus of her lab is to understand the function of the hippocampal circuits in the normal and the diseased brain, in particular oscillations and neuronal representations. She is a leading international expert in the study of the basic mechanisms of physiological ripples and epileptic fast ripples, with strong visibility as developer of novel groundbreaking electrophysiological tools. Dr. de la Prida serves as an Editor for prestigious journals including eLife, Journal of Neuroscience Methods and eNeuro, and has commissioning duties in the American Epilepsy Society, FENS and the Spanish Society for Neurosciences.
Alain Destexhe· Centre National de la Recherche Scientifique and Paris-Saclay University
Wed, Apr 6 · 06:15 UTC
Modeling brain mechanisms is often confined to a given scale, such as single-cell models, network models or whole-brain models, and it is often difficult to relate these models. Here, we show an approach to build models across scales, starting from the level of circuits to the whole brain. The key is the design of accurate population models derived from biophysical models of networks of excitatory and inhibitory neurons, using mean-field techniques. Such population models can be later integrated as units in large-scale networks defining entire brain areas or the whole brain. We illustrate this approach by the simulation of asynchronous and slow-wave states, from circuits to the whole brain. At the mesoscale (millimeters), these models account for travelling activity waves in cortex, and at the macroscale (centimeters), the models reproduce the synchrony of slow waves and their responsiveness to external stimuli. This approach can also be used to evaluate the impact of sub-cellular parameters, such as receptor types or membrane conductances, on the emergent behavior at the whole-brain level. This is illustrated with simulations of the effect of anesthetics. The program codes are open source and run in open-access platforms (such as EBRAINS).
Scott Linderman· Stanford University
Wed, Nov 3 · 07:15 UTC
Gina Poe· University of California, Los Angeles, Integrative Biology & Physiology
Wed, Dec 16 · 06:15 UTC
Athena Akrami· University College London, Sainsbury Wellcome Centre, London, U.K.
Wed, Dec 9 · 06:15 UTC
Noam Shemesh· Champalimaud Centre for the Unknown, Lisbon, Portugal
Wed, Dec 2 · 06:15 UTC
Jennifer Raymond· University of California Los Angeles, Department of Neurobiology
Wed, Nov 4 · 06:15 UTC
Chethan Pandarinath· Emory University, Department of Biomedical Engeering
Wed, Oct 21 · 06:15 UTC
Kate Wassum· University of California, Los Angeles
Wed, Sep 23 · 06:15 UTC
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