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Synchronisation hubs in the visual cortex may arise from strong rhythmic inhibition during gamma oscillations
Authors:Stefanos E. Folias  Shan Yu  Abigail Snyder  Danko Nikolić  Jonathan E. Rubin
Affiliation:1. Department of Mathematics and Statistics, University of Alaska Anchorage, , Anchorage, AK, USA;2. Department of Mathematics, University of Pittsburgh, , Pittsburgh, PA, USA;3. Department of Neurophysiology, Max Planck Institute for Brain Research, , Frankfurt/Main, Germany;4. Frankfurt Institute for Advanced Studies, Wolfgang Goethe University, , Frankfurt/Main, Germany;5. Ernst Strüngmann Institute for Neuroscience in Cooperation with Max Planck Society, , Frankfurt/Main, Germany;6. Department of Psychology, University of Zagreb, , Zagreb, Croatia;7. Center for the Neural Basis of Cognition, , Pittsburgh, PA, USA
Abstract:
Neurons in the visual cortex exhibit heterogeneity in feature selectivity and the tendency to generate action potentials synchronously with other nearby neurons. By examining visual responses from cat area 17 we found that, during gamma oscillations, there was a positive correlation between each unit's sharpness of orientation tuning, strength of oscillations, and propensity towards synchronisation with other units. Using a computational model, we demonstrated that heterogeneity in the strength of rhythmic inhibitory inputs can account for the correlations between these three properties. Neurons subject to strong inhibition tend to oscillate strongly in response to both optimal and suboptimal stimuli and synchronise promiscuously with other neurons, even if they have different orientation preferences. Moreover, these strongly inhibited neurons can exhibit sharp orientation selectivity provided that the inhibition they receive is broadly tuned relative to their excitatory inputs. These results predict that the strength and orientation tuning of synaptic inhibition are heterogeneous across area 17 neurons, which could have important implications for these neurons' sensory processing capabilities. Furthermore, although our experimental recordings were conducted in the visual cortex, our model and simulation results can apply more generally to any brain region with analogous neuron types in which heterogeneity in the strength of rhythmic inhibition can arise during gamma oscillations.
Keywords:cat  computational model  Michigan probes  orientation selectivity  synchronisation
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