A dynamic subset of network interactions underlies tuning to natural movements in marmoset sensorimotor cortex.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 39627212.
- Also identified by DOI 10.1038/s41467-024-54343-6 and PMC identifier 11615226.
- Licence recorded as CC BY-NC-ND.
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Abstract
Mechanisms of computation in sensorimotor cortex must be flexible and robust to support skilled motor behavior. Patterns of neuronal coactivity emerge as a result of computational processes. Pairwise spike-time statistical relationships, across the population, can be summarized as a functional network (FN) which retains single-unit properties. We record populations of single-unit neural activity in marmoset forelimb sensorimotor cortex during prey capture and spontaneous behavior and use an encoding model incorporating kinematic trajectories and network features to predict single-unit activity during forelimb movements. The contribution of network features depends on structured connectivity within strongly connected functional groups. We identify a context-specific functional group that is highly tuned to kinematics and reorganizes its connectivity between spontaneous and prey capture movements. In the remaining context-invariant group, interactions are comparatively stable across behaviors and units are less tuned to kinematics. This suggests different roles in producing natural forelimb movements and contextualizes single-unit tuning properties within population dynamics.
Medical subject headings
- Callithrix
- Sensorimotor Cortex
- Movement
- Forelimb