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Pandinelli, M.

Publications and source records attributed to Pandinelli, M..

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Surprising effects of stimulus repetition on neuronal firing rates and gamma-band synchronization in awake macaque V1

Stimulus repetition is abundant, because the environment is redundant and/or because it is redundantly sampled. This offers an opportunity to optimize the processing of repeated stimuli. Indeed, stimulus repetition leads to classically described neuronal response decreases, and to more recently described neuronal gamma synchronization increases (sometimes preceded by decreases for a few trials). Here, we used a full-screen colored background (FSCB) and a flashed black bar, while recording multi-unit activity (MUA) and local field potentials (LFP) from area V1 of an awake macaque monkey. We found that the FSCB repetition induced neuronal response increases (sometimes preceded by decreases for a few trials) and gamma synchronization decreases (preceded by increases for a few trials). These effects are largely opposite to the dominant previous findings. Intriguingly, these surprising effects reversed when we isolated the responses to the flashed black bar. We discuss these findings, considering differences to previous studies with regards to the subject of the study, the stimuli and the task. We notice that in studies reporting classical results for gamma, sometimes in combination with firing rates, the stimuli were typically (partly) predictive of the reward. Here, we found non-classical results for the FSCB that was not reward predictive, and classical results for the black bar that was reward predictive. Whether this has revealed a general effect of reward predictive versus non-predictive stimuli will require further investigation with stimuli and task designs tailored specifically for this question. SignificanceNatural visual experience often entails repetitions of the same stimulus. This allows optimization of the brains processing of those stimuli. Indeed, repeated stimuli typically induce decreasing firing rates and increasing gamma-band synchronization in many visual areas. However, in this study in awake macaque primary visual cortex, we report surprising opposite effects: under some conditions, stimulus repetition can result in neuronal firing rate increases and gamma-band synchronization decreases. We argue that these effects might relate to the fact that the repeated stimulus was not predictive of a reward. In fact, when we isolated the responses to a second stimulus that was added later in each trial and that was predictive of reward, the effects reverted again to the typical pattern.

neuroscience↗

Primate Saccade Rhythmicity

Rhythmic sampling is a hallmark of many sensory systems in many diverse organisms. In primate vision, rapid foveating eye movements continuously scan the visual environment at a rate of 2-6 Hz, but the statistics of inter-saccadic interval distributions could equally well be described by non-rhythmic stochastic processes as by a (putatively variable) rhythmic oscillator. This raises the fundamental question whether primate visual scanning actually differs from the numerous examples of rhythmic sampling strategies exhibited across species and sensory modalities. Here, using experiments in humans, macaques, and a marmoset, as well as statistical approaches inspired by studies of temporal structure in neuronal spiking patterns, we show that primate saccade generation is unambiguously rooted in a rhythmic source. This finding was remarkably consistent across the three primate species despite their significant evolutionary distance. We find that saccade rate undergoes smooth, slow fluctuations. Accounting for those rate fluctuations was crucial for revealing the true degree of saccade rhythmicity. Thus, exact saccade timing is determined by an interaction between the slow saccade-rate fluctuations with the more temporally-local rhythmic generator. This demonstration of rhythmicity in overt oculomotor sampling behavior provides a link to the fundamental rhythmic nature of many central perceptual and cognitive processes, and places primate saccadic sampling into the large family of rhythmic active sampling behaviors.

neuroscience↗