Tactile stimulation transiently disrupts encoding of whisker position by cerebellar molecular layer interneuron ensembles
Meyer, E. M. M.; Chadderton, P.
Show abstract
Molecular layer interneurons (MLIs) within the cerebellar cortex mediate feed-forward inhibition onto Purkinje cells, positioning them as pivotal modulators of cerebellar output. We asked how motor patterns and salient sensory input influence MLI population activity during active whisking and tactile interactions. Utilizing two-photon calcium imaging combined with high-speed videography, we examined MLI population dynamics in awake, behaving mice engaged in voluntary whisker movements. Our results demonstrate that during free whisking, MLI population activity reliably tracks whisker position, yielding uniform graded responses that provide stable and precise representations over time. Tactile contact with external stimuli evokes additional activation in a subset of MLIs. Sensory input transiently disrupts the linear relationship between MLI activity and whisker position and may account for rapid synchronous inhibition of Purkinje cell spiking activity following tactile stimulation. These findings indicate that MLIs in Crus 1 maintain an accurate internal model of whisker position which is perturbed upon encountering obstacles. This disruption likely reflects the integration of sensory feedback, disrupting predictive signals that are subsequently passed forward to Purkinje cells. Such signals can alert the brain to novel happenings and be used to update motor commands, thereby contributing to cerebellar function in response to environmental changes.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Dynamics of the Cortico-Cerebellar Loop Fine-Tune Dexterous Movement 97%
- Cholinergic input to mouse visual cortex signals a movement state and acutely enhances layer 5 responsiveness 97%
- Synaptic interactions between stellate cells and parvalbumin interneurons in layer 2 of the medial entorhinal cortex are organized at the scale of grid cell clusters 97%
Similar papers in this journal
- Cell-type specific outcome representation in primary motor cortex 97%
- Opposing influence of top-down and bottom-up input on different types of excitatory layer 2/3 neurons in mouse visual cortex 96%
- Individual thalamic inhibitory interneurons are functionally specialized towards distinct visual features 96%
Similar papers in this journal
- Place cell map genesis via competitive learning and conjunctive coding in the dentate gyrus 96%
- Continuous multiplexed population representations of task context in the mouse primary visual cortex 96%
- Cortical Reactivation of Non-Spatial and Spatial Memory Representations Coordinate with Hippocampus to Form a Memory Dialogue 96%
"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.