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Emergence of time persistence in a data-driven neural network model

  • Sebastien Wolf
  • , Guillaume Le Goc
  • , Georges Debrégeas
  • , Simona Cocco
  • , Rémi Monasson
  • Sorbonne Université

Research output: Contribution to journalArticlepeer-review

Abstract

Establishing accurate as well as interpretable models of network activity is an open challenge in systems neuroscience. Here, we infer an energy-based model of the anterior rhombencephalic turning region (ARTR), a circuit that controls zebrafish swimming statistics, using functional recordings of the spontaneous activity of hundreds of neurons. Although our model is trained to reproduce the low-order statistics of the network activity at short time scales, its simulated dynamics quantitatively captures the slowly alternating activity of the ARTR. It further reproduces the modulation of this persistent dynamics by the water temperature and visual stimulation. Mathematical analysis of the model unveils a low-dimensional landscape-based representation of the ARTR activity, where the slow network dynamics reflects Arrhenius-like barriers crossings between metastable states. Our work thus shows how data-driven models built from large neural populations recordings can be reduced to low-dimensional functional models in order to reveal the fundamental mechanisms controlling the collective neuronal dynamics.

Original languageEnglish
JournaleLife
Volume12
DOIs
Publication statusPublished - 14 Mar 2023

Keywords

  • Ising model
  • dimensional reduction
  • metastable state
  • neural persistence
  • neuroscience
  • zebrafish

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