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Yudintsev, G.

Publications and source records attributed to Yudintsev, G..

2 recordsLinked to original sources

Corticothalamic gating of population auditory thalamocortical transmission in mouse

Since the discovery of the receptive field, scientists have tracked receptive field structure to gain insights about mechanisms of sensory processing. At the level of the thalamus and cortex, this linear filter approach has been challenged by findings that populations of cortical neurons respond in a stereotyped fashion to sensory stimuli. Here, we elucidate a possible mechanism by which gating of cortical representations occurs. All-or-none population responses (here called \"ON\" and \"OFF\" responses) were observed in vivo and in vitro in the mouse auditory cortex at near-threshold acoustic or electrical stimulation. ON-responses were associated with previously-described UP states in the auditory cortex. OFF-responses in the cortex were only eliminated by blocking GABAergic inhibition in the thalamus. Opto- and chemogenetic silencing of NTSR-positive corticothalamic layer 6 (CTL6) neurons as well as the pharmacological blocking of the thalamic reticular nucleus (TRN) retrieved the missing cortical responses, suggesting that the corticothalamic feedback inhibition via TRN controls the gating of thalamocortical activity. Moreover, the oscillation of the pre-stimulus activity of corticothalamic cells predicted the cortical ON vs. OFF responses, suggesting that underlying cortical oscillation controls thalamocortical gating. These data suggest that the thalamus may recruit cortical ensembles rather than linearly encoding ascending stimuli and that corticothalamic projections play a key role in selecting cortical ensembles for activation.

neuroscience

Connectional heterogeneity in the mouse auditory corticocollicular system

The auditory cortex (AC) sends long-range projections to virtually all subcortical structures important for hearing. One of the largest and most complex of these - the projection between AC and inferior colliculus (IC, the corticocollicular pathway) - has attracted attention due to its potential to alter IC response properties. The corticocollicular pathway comprises a component originating from layer 5, but recent evidence suggests a significant contribution from deep layer 6, constituting 25% of corticocollicular neurons in mouse. The functions of layer-specific corticocollicular projections are poorly understood. Here, using a combination of tracers and in vivo imaging, we observed that layer 5 and layer 6 corticocollicular neurons differ in their cortical areas of origin, as well as IC termination patterns. Layer 5 corticocollicular neurons are concentrated in primary AC areas while layer 6 corticocollicular neurons emanate from broad auditory and non-auditory areas of temporal cortex. In addition, layer 5 projects to three IC subdivisions with axo-somatic terminals in the central nucleus, while layer 6 projects to non-central nuclei and targets the most superficial layers. These findings suggest that layer 5 corticocollicular neurons form a direct connection between primary AC and IC while the layer 6 projection is more diffusely organized and carries non-auditory information to modulate IC.

neuroscience