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Tinelli, S.

Publications and source records attributed to Tinelli, S..

2 recordsLinked to original sources

Brain-wide population activity during reaching integrates action-mediated goal expectation

Anticipating the outcomes of actions is central to goal-directed behaviour, but how such expectations are encoded across the brain during ongoing movement remains unclear. To address this, we recorded spiking activity from cortical and subcortical regions using multiple Neuropixels probes simultaneously in head-fixed mice performing a water-reaching task. We found that distributed neural population dynamics were strongly modulated by the availability of reward beyond their encoding of forelimb kinematics. Principal component analysis revealed conserved population dynamics across brain regions and sessions that depended on reach amplitude and reward availability. Generalized linear models revealed outcome-related encoding within region-specific population dynamics, in addition to kinematic encoding, with the strongest outcome signals expressed in frontal cortico-thalamic regions. Unsupervised cluster analysis further identified outcome-encoding subpopulations that were enriched in frontal cortices and disproportionally contributed to the shared global latent dynamics. Together, these findings demonstrate that action-mediated outcome expectations are encoded in movement-related population dynamics that are shaped by functional clusters of neurons across the brain.

neuroscience↗

Local cortical inhibitory subnetworks are shaped by pyramidal neuron progenitor type

The degree to which cortical neurons share inhibitory synaptic input determines their co-activity within a network. However, the principles by which inhibition is shared between neurons are not known. Here we combine in utero labeling with in vivo two-photon targeted patch-clamp recordings in mature cortex to reveal that a layer 2/3 (L2/3) pyramidal neurons local inhibitory input reflects the embryonic progenitor type from which the neuron is born. In contrast to neighboring neurons, pyramidal neurons derived from intermediate progenitors receive synaptic inhibition that is weakly coupled to local network activity. The underlying mechanisms do not depend upon the amount of inhibitory input received from different interneuron subclasses. Rather, progenitor type defines how much inhibitory input a neuron shares with its neighbors, which is reflected in how individual interneurons target pyramidal neurons according to progenitor type. These findings reveal new significance for progenitor diversity and identify ontogenetic origins of fine-scale inhibitory cortical subnetworks.

neuroscience↗