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Cortical circuitry mediating inter-areal touch signal amplification
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Abstract
Sensory cortical areas are often organized into topographic maps which represent the sensory epithelium
1,2
. Individual areas are richly interconnected
3
, in many cases via reciprocal projections that respect the topography of the underlying map
4,5
. Because topographically matched cortical patches process the same stimulus, their interaction is likely central to many neural computations
6-10
. Here, we ask how topographically matched subregions of primary and secondary vibrissal somatosensory cortices (vS1 and vS2) interact during whisker touch. In the mouse, whisker touch-responsive neurons are topographically organized in both vS1 and vS2. Both areas receive thalamic touch input and are topographically interconnected
4
. Volumetric calcium imaging in mice actively palpating an object with two whiskers revealed a sparse population of highly active, broadly tuned touch neurons responsive to both whiskers. These neurons were especially pronounced in superficial layer 2 in both areas. Despite their rarity, these neurons served as the main conduits of touch-evoked activity between vS1 and vS2 and exhibited elevated synchrony. Focal lesions of the whisker touch-responsive region in vS1 or vS2 degraded touch responses in the unlesioned area, with whisker-specific vS1 lesions degrading whisker-specific vS2 touch responses. Thus, a sparse and superficial population of broadly tuned touch neurons recurrently amplifies touch responses across vS1 and vS2.
Title: Cortical circuitry mediating inter-areal touch signal amplification
Description:
Abstract
Sensory cortical areas are often organized into topographic maps which represent the sensory epithelium
1,2
.
Individual areas are richly interconnected
3
, in many cases via reciprocal projections that respect the topography of the underlying map
4,5
.
Because topographically matched cortical patches process the same stimulus, their interaction is likely central to many neural computations
6-10
.
Here, we ask how topographically matched subregions of primary and secondary vibrissal somatosensory cortices (vS1 and vS2) interact during whisker touch.
In the mouse, whisker touch-responsive neurons are topographically organized in both vS1 and vS2.
Both areas receive thalamic touch input and are topographically interconnected
4
.
Volumetric calcium imaging in mice actively palpating an object with two whiskers revealed a sparse population of highly active, broadly tuned touch neurons responsive to both whiskers.
These neurons were especially pronounced in superficial layer 2 in both areas.
Despite their rarity, these neurons served as the main conduits of touch-evoked activity between vS1 and vS2 and exhibited elevated synchrony.
Focal lesions of the whisker touch-responsive region in vS1 or vS2 degraded touch responses in the unlesioned area, with whisker-specific vS1 lesions degrading whisker-specific vS2 touch responses.
Thus, a sparse and superficial population of broadly tuned touch neurons recurrently amplifies touch responses across vS1 and vS2.
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