Go with the visual flow: circuit mechanisms for gaze control during locomotion
Eugenia Chiappe· Champalimaud Foundation
Fri, Sep 12 · 16:00 UTC
Seminars and recordings
Eugenia Chiappe· Champalimaud Foundation
Fri, Sep 12 · 16:00 UTC
Fabio Cortesi· Queensland University
Thu, Jun 26 · 12:00 UTC
Leo Peichl· Goethe University Frankfurt
Mon, Jun 3 · 15:00 UTC
Yirong Peng· UCLA Stein Eye Institute
Mon, Mar 4 · 16:00 UTC
Dmitri 'Mitya' Chklovskii· Flatiron Institute, Center for Computational Neuroscience
Mon, Feb 5 · 14:00 UTC
We build upon and expand the efficient coding and predictive information models of neurons, presenting a novel perspective that neurons not only predict but also actively influence their future inputs through their outputs. We introduce the concept of neurons as feedback controllers of their environments, a role traditionally considered computationally demanding, particularly when the dynamical system characterizing the environment is unknown. By harnessing a novel data-driven control framework, we illustrate the feasibility of biological neurons functioning as effective feedback controllers. This innovative approach enables us to coherently explain various experimental findings that previously seemed unrelated. Our research has profound implications, potentially revolutionizing the modeling of neuronal circuits and paving the way for the creation of alternative, biologically inspired artificial neural networks.
Damon Clark· Yale University
Mon, Jan 22 · 14:00 UTC
Lorian E. Schweikert· University of North Carolina Wilmington
Mon, Nov 13 · 14:00 UTC
Ben Sivyer· OHSU, Casey Eye Institute
Mon, Oct 30 · 15:00 UTC
In this talk, I will focus on recent work that has uncovered the diversity of intrinsically photosensitive retinal ganglion cells (ipRGCs). These are a unique type of retinal ganglion cell that contains the photopigment melanopsin. ipRGCs are the retinal neurons responsible for driving non-imaging forming behaviors and reflexes, such as circadian entrainment and pupil constriction, amongst many others. My lab has recently focused on uncovering the diversity of ipRGCs, their distribution throughout the mammalian retina, and their axon projections in the brain.
Axel Borst· Max-Planck-Institute for Biological Intelligence
Mon, Oct 9 · 14:00 UTC
Detecting the direction of image motion is important for visual navigation, predator avoidance and prey capture, and thus essential for the survival of all animals that have eyes. However, the direction of motion is not explicitly represented at the level of the photoreceptors: it rather needs to be computed by subsequent neural circuits, involving a comparison of the signals from neighboring photoreceptors over time. The exact nature of this process represents a classic example of neural computation and has been a longstanding question in the field. Much progress has been made in recent years in the fruit fly Drosophila melanogaster by genetically targeting individual neuron types to block, activate or record from them. Our results obtained this way demonstrate that the local direction of motion is computed in two parallel ON and OFF pathways. Within each pathway, a retinotopic array of four direction-selective T4 (ON) and T5 (OFF) cells represents the four Cartesian components of local motion vectors (leftward, rightward, upward, downward). Since none of the presynaptic neurons is directionally selective, direction selectivity first emerges within T4 and T5 cells. Our present research focuses on the cellular and biophysical mechanisms by which the direction of image motion is computed in these neurons.
Karthik Shekhar· University of California, Berkeley
Mon, Jul 24 · 15:00 UTC
Morven Cameron· Western Sydney University
Mon, Jun 26 · 08:00 UTC
Takeshi Yoshimatsu· University of Washington, St. Louis
Mon, Jun 12 · 14:00 UTC
Stephanie Palmer· University of Chicago
Mon, May 29 · 15:00 UTC
Cris Niell· University of Oregon
Mon, May 22 · 15:00 UTC
Animal Vision - The work of Mike Land· University of Sussex
Thu, Apr 27 · 15:15 UTC
Note: British 16.15 is the finishing time
Katja Reinhard· SISSA Trieste
Mon, Apr 24 · 13:00 UTC
Tiffany Schmidt· Northwestern University
Mon, Mar 20 · 16:00 UTC
Marla Feller· University of California, Berkeley
Mon, Feb 13 · 15:00 UTC
Teresa Puthussery· University of California, Berkeley
Mon, Jan 23 · 15:00 UTC
To maintain a stable and clear image of the world, our eyes reflexively follow the direction in which a visual scene is moving. Such gaze stabilization mechanisms reduce image blur as we move in the environment. In non-primate mammals, this behavior is initiated by ON-type direction-selective ganglion cells (ON-DSGCs), which detect the direction of image motion and transmit signals to brainstem nuclei that drive compensatory eye movements. However, ON-DSGCs have not yet been functionally identified in primates, raising the possibility that the visual inputs that drive this behavior instead arise in the cortex. In this talk, I will present molecular, morphological and functional evidence for identification of an ON-DSGC in macaque retina. The presence of ON-DSGCs highlights the need to examine the contribution of subcortical retinal mechanisms to normal and aberrant gaze stabilization in the developing and mature visual system. More generally, our findings demonstrate the power of a multimodal approach to study sparsely represented primate RGC types.
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