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Karayanni, M.

Publications and source records attributed to Karayanni, M..

2 recordsLinked to original sources

Predictive abstract task representations support few-shot learning in the rat brain

Few-shot learning reveals core mechanisms of flexible cognition and adaptive decision- making in animal behavior by showing how animals rapidly infer rules, categories, or action strategies from sparse experience. Few-shot learning often depends on abstract representations that capture task structure and generalize across similar instances of the same task. The orbitofrontal cortex (OFC) is known to encode abstract representations, but whether these representations can adapt to new contingencies at the rapid timescale of few-shot learning is unknown. We trained rats on a sequence-learning task with recurring structure but changing contingencies. Rats demonstrated few-shot learning, reaching near-optimal performance within 2-3 rewards after each contingency change, exploiting the tasks recurring structure to rapidly generalize across sequence blocks. We recorded OFC activity using Neuropixels probes during task performance. The firing rate of OFC units in the few seconds preceding each poke encoded the task state and predicted the selected action. Remarkably, this predictive activity also encoded the abstract notion of role: the function of an action under the current contingencies. Role representations in the OFC changed on the same rapid timescale as the behavioral changes. We suggest that few-shot learning in this task is supported by the rapid remapping of roles onto actions.

neuroscience↗

A Rapid Anterior Auditory Processing Stream Through the Insulo-Parietal Auditory Field in the Rat

The insular cortex is believed to be involved in a wide range of auditory functions in the mammalian brain. We studied the organization and basic response properties of auditory neurons in insular cortex and adjacent areas by recording responses to sound stimuli in anesthetized rats. Auditory neurons were present in an insulo-parietal auditory field that spans the boundary between the posterior insula, particularly in the granular insular cortex and the ventral part of the secondary somatosensory cortex. Neurons in this field had narrow tuning, were preferentially tuned to relatively low frequencies (<16 kHz), and had short response latencies. Intriguingly, some auditory units in this insulo-parietal field displayed shorter onset latencies than the minimal latency in primary auditory cortex. At the same time, these units showed weaker sensitivity to deviance than units in primary auditory cortex. These results establish the existence of a rapid information stream through the insulo-parietal cortex that may parallel the pathway through the primary and anterior auditory fields.

neuroscience↗