Revisiting Persistent Neuronal Activity During Covert Spatial Attention.

Front Neural Circuits

Institut des Sciences Cognitives Marc Jeannerod, CNRS UMR 5229, Université Claude Bernard Lyon I, 67 Boulevard Pinel, Bron, France.

Published: December 2021

AI Article Synopsis

  • Recent studies indicate that the prefrontal cortex (PFC) shows persistent activity during visual attention tasks, but this activity is sparse and heterogeneous across trials.
  • Single-trial analyses reveal that attention-related PFC activity is more dynamic and complex than previously thought, involving variable patterns of information encoding rather than consistent persistence.
  • Machine learning techniques and dimensionality reduction highlight how the PFC integrates multiple sources of information in a dynamic way, suggesting that its computational organization significantly influences behavior during attention tasks.

Article Abstract

Persistent activity has been observed in the prefrontal cortex (PFC), in particular during the delay periods of visual attention tasks. Classical approaches based on the average activity over multiple trials have revealed that such an activity encodes the information about the attentional instruction provided in such tasks. However, single-trial approaches have shown that activity in this area is rather sparse than persistent and highly heterogeneous not only within the trials but also between the different trials. Thus, this observation raised the question of how persistent the actually persistent attention-related prefrontal activity is and how it contributes to spatial attention. In this paper, we review recent evidence of precisely deconstructing the persistence of the neural activity in the PFC in the context of attention orienting. The inclusion of machine-learning methods for decoding the information reveals that attention orienting is a highly dynamic process, possessing intrinsic oscillatory dynamics working at multiple timescales spanning from milliseconds to minutes. Dimensionality reduction methods further show that this persistent activity dynamically incorporates multiple sources of information. This novel framework reflects a high complexity in the neural representation of the attention-related information in the PFC, and how its computational organization predicts behavior.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8278237PMC
http://dx.doi.org/10.3389/fncir.2021.679796DOI Listing

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