A cortical circuit for orchestrating oromanual food manipulation
An, X.; Matho, K. S.; Li, Y.; Mohan, H.; Xu, X. H.; Whishaw, I.; Kepecs, A.; Huang, Z. J.
Show abstract
The seamless coordination of hands and mouth--whether in humans eating corn on the cob or mice extracting sunflower seeds--represents one of evolutions most sophisticated motor achievements. Whereas spinal and brainstem circuits implement basic forelimb and orofacial actions, whether there is a specialized cortical circuit that assembles these actions to enable skilled oromanual manipulation remains unclear. Here, we discover a cortical area and its cell-type-specific circuitry that govern oromanual food manipulation in mice. An optogenetic screen of cortical areas and projection neuron types identified a rostral forelimb-orofacial area (RFO), wherein activation of pyramidal tract (PTFezf2) and intratelencephalic (ITPlxnD1) neurons induced concerted posture, forelimb and orofacial movements resembling eating. In a freely moving pasta-eating behavior, pharmacological RFO inactivation impaired the sitting posture, hand recruitment, and oromanual coordination in pasta eating. RFO PTFezf2 and ITPlxnD1 activity was closely correlated with oromanual pasta manipulation and hand-assisted biting. Optogenetic inhibition revealed that PTsFezf2 regulate dexterous hand and mouth movements while ITsPlxnD1 play a more prominent role in oromanual coordination. RFO forms the hub of an extensive network, with reciprocal connections to cortical forelimb and orofacial sensorimotor areas, as well as insular and visceral areas. Within this cortical network, RFO PTsFezf2 project unilaterally to multiple subcortical, brainstem and spinal areas associated with forelimb and orofacial control, while ITsPlxnD1 project bilaterally to the entire network and the ventrolateral striatum, and can mediate concurrent forelimb and mouth movement in part through their striatal projection. Together, these findings uncover the cell-type-specific implementation of a cortical circuit that orchestrates oromanual manipulation, essential for skilled feeding.
Matching journals
The top 2 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Unexpected contributions of striatal projection neurons coexpressing dopamine D1 and D2 receptors in balancing motor control 98%
- The oxytocin-modulated brain circuit that synchronizes heart rate with breathing 98%
- Emergence of a somatosensory tonotopic map for substrate vibration in the brainstem 98%
Similar papers in this journal
- Potentiation of active locomotor state by spinal-projecting serotonergic neurons 98%
- A cortical circuit mechanism for coding and updating task structural knowledge in inference-based decision-making 98%
- Ventral frontostriatal circuitry mediates the computation of reinforcement from symbolic gains and losses 97%
"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.