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An information-theoretic quantification of the content of communication between brain regions

bioRxiv, ISSN: 2692-8205
2023
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  • Mentions
    1
    • News Mentions
      1
      • 1
  • Social Media
    23
    • Shares, Likes & Comments
      23
      • Facebook
        23

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An information-theoretic quantification of the content of communication between brain regions

2023 JUN 23 (NewsRx) -- By a News Reporter-Staff News Editor at NewsRx Life Science Daily -- According to news reporting based on a preprint

Article Description

Quantifying the amount, content and direction of communication between brain regions is key to understanding brain function. Traditional methods to analyze brain activity based on the Wiener-Granger causality principle quantify the overall information propagated by neural activity between simultaneously recorded brain regions, but do not reveal the information flow about specific features of interest (such as sensory stimuli). Here, we develop a new information theoretic measure termed Feature-specific Information Transfer (FIT), quantifying how much information about a specific feature flows between two regions. FIT merges the Wiener-Granger causality principle with information-content specificity. We first derive FIT and prove analytically its key properties. We then illustrate and test them with simulations of neural activity, demonstrating that FIT identifies, within the total information flowing between regions, the information that is transmitted about specific features. We then analyze three neural datasets obtained with different recording methods, magneto- and electro-encephalography, and spiking activity, to demonstrate the ability of FIT to uncover the content and direction of information flow between brain regions beyond what can be discerned with traditional anaytical methods. FIT can improve our understanding of how brain regions communicate by uncovering previously hidden feature-specific information flow.

Bibliographic Details

Celotto, Marco; Bím, Jan; Tlaie, Alejandro; De Feo, Vito; Lemke, Stefan; Chicharro, Daniel; Nili, Hamed; Bieler, Malte; Hanganu-Opatz, Ileana L; Donner, Tobias H; Brovelli, Andrea; Panzeri, Stefano

Cold Spring Harbor Laboratory

Biochemistry, Genetics and Molecular Biology; Agricultural and Biological Sciences; Immunology and Microbiology; Neuroscience; Pharmacology, Toxicology and Pharmaceutics

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