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Simulations approaching data: cortical slow waves in inferred models of the whole hemisphere of mouse

Authors :
Cristiano Capone
Chiara De Luca
Giulia De Bonis
Robin Gutzen
Irene Bernava
Elena Pastorelli
Francesco Simula
Cosimo Lupo
Leonardo Tonielli
Francesco Resta
Anna Letizia Allegra Mascaro
Francesco Pavone
Michael Denker
Pier Stanislao Paolucci
Source :
Communications biology 6(1), 266 (2023). doi:10.1038/s42003-023-04580-0, Bernstein Conference 2022, Berlin, Germany, 2022-09-13-2022-09-16
Publication Year :
2023
Publisher :
Springer Science and Business Media LLC, 2023.

Abstract

The development of novel techniques to record wide-field brain activity enables estimation of data-driven models from thousands of recording channels and hence across large regions of cortex. These in turn improve our understanding of the modulation of brain states and the richness of traveling waves dynamics. Here, we infer data-driven models from high-resolution in-vivo recordings of mouse brain obtained from wide-field calcium imaging. We then assimilate experimental and simulated data through the characterization of the spatio-temporal features of cortical waves in experimental recordings. Inference is built in two steps: an inner loop that optimizes a mean-field model by likelihood maximization, and an outer loop that optimizes a periodic neuro-modulation via direct comparison of observables that characterize cortical slow waves. The model reproduces most of the features of the non-stationary and non-linear dynamics present in the high-resolution in-vivo recordings of the mouse brain. The proposed approach offers new methods of characterizing and understanding cortical waves for experimental and computational neuroscientists.

Details

ISSN :
23993642
Volume :
6
Database :
OpenAIRE
Journal :
Communications Biology
Accession number :
edsair.doi.dedup.....98826c52b13dcf85635b87455b36395e
Full Text :
https://doi.org/10.1038/s42003-023-04580-0