Differential representation of active and passive touch in mouse somatosensory thalamus
Sumser, A.; Isaias-Camacho, E.; Mease, R. A.; Groh, A.
Show abstract
Active and passive sensing strategies are integral to an animals behavioral repertoire. Nevertheless, there is a lack of information regarding the neuronal circuitry that underpins these strategies, particularly at the thalamus level. We evaluated how active versus passive whisker deflections are represented in single neurons of the ventral posterior thalamus (VPM) and the posterior medial thalamus (POm) in awake mice. These are the first-and higher-order thalamic nuclei of the whisker system, respectively. VPM neurons robustly responded to both active and passive whisker deflections, while POm neurons showed a preference for passive deflections and responded poorly to active touches. This response disparity could not be explained by the animals voluntary whisking state or stimulus kinetics. In contrast, cortical activity significantly influenced POms responses to passive touch. Inhibition of the barrel cortex strongly attenuated whisker responses in POm and simultaneously increased the whisking phase coding. This suggests that POm receives touch information from the cortex and phase information from the brainstem. Together, these findings suggest two thalamic relay streams, where VPM robustly relays both active and passive deflection, while POms sensitivity requires top-down cortical involvement to signal salient events such as unexpected passive deflections.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
Similar papers in this journal
- Selective connectivity limits functional binocularity in the retinogeniculate pathway of the mouse 97%
- Feature-tuned synaptic inputs to somatostatin interneurons drive context-dependent processing 97%
- Transient developmental increase of prefrontal activity alters network maturation and causes cognitive dysfunction in adult mice 97%
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.