Lineage tracing through somatic mutations in living human individuals
Tue, Apr 13 · 17:00 UTC · Online
Seminars and recordings
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Juergen Knoblich· IMBA
Tue, Oct 20 · 17:00 UTC
Michèle Studer· Université Côte d'Azur
Tue, Oct 6 · 17:00 UTC
Elisabeth Binder· Max Planck Institute of Psychiatry
Tue, Sep 22 · 17:00 UTC
Ana Luisa Carvalho· Universidade de Coimbra
Tue, Sep 15 · 17:00 UTC
Gul Dolen· Johns Hopkins University, School of Medicine
Tue, Sep 8 · 17:00 UTC
Kevin Bender· UCSF
Tue, Sep 1 · 17:00 UTC
Gina Turrigiano· Brandeis University
Tue, Jul 21 · 17:00 UTC
Neocortical networks must generate and maintain stable activity patterns despite perturbations induced by learning and experience- dependent plasticity. There is abundant theoretical and experimental evidence that network stability is achieved through homeostatic plasticity mechanisms that adjust synaptic and neuronal properties to stabilize some measure of average activity, and this process has been extensively studied in primary visual cortex (V1), where chronic visual deprivation induces an initial drop in activity and ensemble average firing rates (FRs), but over time activity is restored to baseline despite continued deprivation. Here I discuss recent work from the lab in which we followed this FR homeostasis in individual V1 neurons in freely behaving animals during a prolonged visual deprivation/eye-reopening paradigm. We find that - when FRs are perturbed by manipulating sensory experience - over time they return precisely to a cell-autonomous set-point. Finally, we find that homeostatic plasticity is perturbed in a mouse model of Autism spectrum disorder, and this results in a breakdown of FRH within V1. These data suggest that loss of homeostatic plasticity is one primary cause of excitation/inhibition imbalances in ASD models. Together these studies illuminate the role of stabilizing plasticity mechanisms in the ability of neocortical circuits to recover robust function following challenges to their excitability.
Jean-Bernard Manent· Mediterranean Institute of Neurobiology - INMED, Marseille, France
Tue, Jul 14 · 17:00 UTC
During histogenesis of the cerebral cortex, a proper laminar placement of defined numbers of specific cellular types is necessary to ensure proper functional connectivity patterns. There is a wide range of cortical malformations causing epilepsy and intellectual disability in humans, characterized with various degrees of neuronal misplacement, aberrant circuit organization or abnormal folding patterns. Although progress in human neurogenetics and brain imaging techniques have considerably advanced the identification of their causative genes, the pathophysiological mechanisms associated with defective cerebral cortex development remain poorly understood. In my presentation, I will outline some of our recent works in rodent models illustrating how misplaced neurons forming grey matter heterotopia, a cortical malformation subtype, interfere with the proper development of cortical circuits, and induce both local and distant circuitry changes associated with the subsequent emergence of epilepsy.
Ukpong B. Eyo· University of Virginia
Tue, Jul 7 · 17:00 UTC
In this talk, Dr. Eyo will his present research on microglia, the brain’s resident immune cell. After providing some background to these cells, Dr. Eyo will highlight two aspects of his research. First, some of his previous work elucidating microglial dynamic activity during development as well as mechanisms regulating their demise during simulated developmental ischemia will be discussed. Second, research will be presented clarifying mechanisms underlying the interactions between microglia and neurons with a special focus on seizure disorders. Together, these findings highlight microglia as a critical cell type in brain function in development and brain pathology
Silvia De Rubeis· Friedman Brain Institute, Icahn School of Medicine at Mount Sinai, New York City
Tue, Jun 30 · 17:00 UTC
Autism spectrum disorder (ASD) is a neurodevelopmental disorder affecting up to 1% of the population. Over the past few years, large-scale genomic studies have identified hundreds of genetic loci associated with liability to ASD. It is now time to translate these genetic discoveries into functional studies that can help us understand convergences and divergences across risk genes, and build pre-clinical cell and animal models. In this seminar, I will discuss some of the most recent findings on the genetic risk architecture of ASD. I will then expand on our work on biomarkers discovery and neurodevelopmental analyses in two rare genetic conditions associated with ASD: ADNP and DDX3X syndrome.
Carlos Portera-Cailliau· UCLA
Tue, Jun 23 · 17:00 UTC
To uncover the circuit-level alterations that underlie atypical sensory processing associated with autism, we have adopted a symptom-to-circuit approach in theFmr1-/- mouse model of Fragile X syndrome (FXS). Using a go/no-go task and in vivo 2-photon calcium imaging, we find that impaired visual discrimination in Fmr1-/- mice correlates with marked deficits in orientation tuning of principal neurons in primary visual cortex, and a decrease in the activity of parvalbumin (PV) interneurons. Restoring visually evoked activity in PV cells in Fmr1-/- mice with a chemogenetic (DREADD) strategy was sufficient to rescue their behavioural performance. Strikingly, human subjects with FXS exhibit similar impairments in visual discrimination as Fmr1-/- mice. These results suggest that manipulating inhibition may help sensory processing in FXS. More recently, we find that the ability of Fmr1-/- mice to perform the visual discrimination task is also drastically impaired in the presence of visual or auditory distractors, suggesting that sensory hypersensitivity may affect perceptual learning in autism.
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