Published July 27, 2020 | Version v1
Dataset Open

Data from: Brain states govern the spatio-temporal dynamics of resting-state functional connectivity

  • 1. Leibniz Institute for Resilience Research*
  • 2. Massachusetts Institute of Technology
  • 3. University Medical Center Mainz*

Description

Previously, using simultaneous resting-state functional magnetic resonance imaging (fMRI) and photometry-based neuronal calcium recordings in the anesthetized rat, we identified blood oxygenation level-dependent (BOLD) responses directly related to slow calcium waves, revealing a cortex-wide and spatially organized correlate of locally recorded neuronal activity (Schwalm et al., 2017). Here, using the same techniques, we investigate two distinct cortical activity states: persistent activity, in which compartmentalized network dynamics were observed; and slow wave activity, dominated by a cortex-wide BOLD component, suggesting a strong functional coupling of inter-cortical activity. During slow wave activity we find a correlation between the occurring slow wave events and the strength of functional connectivity between different cortical areas. These findings suggest that down-up transitions of neuronal excitability can drive cortex-wide functional connectivity. This study provides further evidence that changes in functional connectivity are dependent on the brain's current state, directly linked to the generation of slow waves.

 

Notes

Funding provided by: DFG
Crossref Funder Registry ID: http://dx.doi.org/10.13039/501100001659
Award Number: SPP 1665: Resolving and manipulating neuronal networks in the mammalian brain

Funding provided by: CRC1193*
Crossref Funder Registry ID:
Award Number: Neurobiology of resilience

Funding provided by: CRC1193
Crossref Funder Registry ID:
Award Number: Neurobiology of resilience

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