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Topic: Ganglion cells

Seminar
7 seminars
Seminar · Computational Neuroscience

A perturbative approach to understand retinal computations

Olivier Marre · Institut de la Vision, Paris

Wed, Mar 12, 2025 · 15:00 UTC

A major challenge in sensory systems is to understand how neurons extract information from the natural environment. Models derived from their responses to artificial stimuli often have a hard time to generalize and predict responses to natural scenes. However, models directly learned on the responses to natural scenes can be hard to interpret. To address this issue, we have recently developed an approach where we add small perturbations to natural scenes and measure how these perturbations change neuronal responses, to better understand the features extracted by sensory neurons. I will show se

Seminar · Neuroscience

A draft connectome for ganglion cell types of the mouse retina

David Berson · Brown University

Mon, May 16, 2022 · 15:00 UTC

The visual system of the brain is highly parallel in its architecture. This is clearly evident in the outputs of the retina, which arise from neurons called ganglion cells. Work in our lab has shown that mammalian retinas contain more than a dozen distinct types of ganglion cells. Each type appears to filter the retinal image in a unique way and to relay this processed signal to a specific set of targets in the brain. My students and I are working to understand the meaning of this parallel organization through electrophysiological and anatomical studies. We record from light-responsive ganglio

Seminar · Vision Science

Mutation targeted gene therapy approaches to alter rod degeneration and retain cones

Maureen McCall · University of Louisville

Mon, Mar 28, 2022 · 14:00 UTC

My research uses electrophysiological techniques to evaluate normal retinal function, dysfunction caused by blinding retinal diseases and the restoration of function using a variety of therapeutic strategies. We can use our understanding or normal retinal function and disease-related changes to construct optimal therapeutic strategies and evaluate how they ameliorate the effects of disease. Retinitis pigmentosa (RP) is a family of blinding eye diseases caused by photoreceptor degeneration. The absence of the cells that for this primary signal leads to blindness. My interest in RP involves the

Seminar · Vision Science

Nonlinear spatial integration in retinal bipolar cells shapes the encoding of artificial and natural stimuli

Helene Schreyer · Gollisch lab, University Medical Center Göttingen, Germany

Thu, Dec 9, 2021 · 16:30 UTC

Vision begins in the eye, and what the “retina tells the brain” is a major interest in visual neuroscience. To deduce what the retina encodes (“tells”), computational models are essential. The most important models in the retina currently aim to understand the responses of the retinal output neurons – the ganglion cells. Typically, these models make simplifying assumptions about the neurons in the retinal network upstream of ganglion cells. One important assumption is linear spatial integration. In this talk, I first define what it means for a neuron to be spatially linear or nonlinear and how

Seminar · Vision Science

An optimal population code for global motion estimation in local direction-selective cells

Miriam Henning · Silies lab, University of Mainz, Germany

Thu, Nov 4, 2021 · 16:00 UTC

Neuronal computations are matched to optimally encode the sensory information that is available and relevant for the animal. However, the physical distribution of sensory information is often shaped by the animal’s own behavior. One prominent example is the encoding of optic flow fields that are generated during self-motion of the animal and will therefore depend on the type of locomotion. How evolution has matched computational resources to the behavioral constraints of an animal is not known. Here we use in vivo two photon imaging to record from a population of >3.500 local-direction selecti

Seminar · Vision Science

Synapse-specific direction selectivity in retinal bipolar cell axon terminals

Keisuke Yonehara · Aarhus University

Mon, Nov 16, 2020 · 14:00 UTC

The ability to encode the direction of image motion is fundamental to our sense of vision. Direction selectivity along the four cardinal directions is thought to originate in direction-selective ganglion cells (DSGCs), due to directionally-tuned GABAergic suppression by starburst cells. Here, by utilizing two-photon glutamate imaging to measure synaptic release, we reveal that direction selectivity along all four directions arises earlier than expected, at bipolar cell outputs. Thus, DSGCs receive directionally-aligned glutamatergic inputs from bipolar cell boutons. We further show that this b

Seminar · Vision Science

Dynamic computation in the retina by retuning of neurons and synapses

Leon Lagnado · University of Sussex

Wed, Sep 16, 2020 · 13:00 UTC

How does a circuit of neurons process sensory information? And how are transformations of neural signals altered by changes in synaptic strength? We investigate these questions in the context of the visual system and the lateral line of fish. A distinguishing feature of our approach is the imaging of activity across populations of synapses – the fundamental elements of signal transfer within all brain circuits. A guiding hypothesis is that the plasticity of neurotransmission plays a major part in controlling the input-output relation of sensory circuits, regulating the tuning and sensitivit

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