| Literature DB >> 26643354 |
Zirui Huang1, Jianfeng Zhang2,3, André Longtin4, Grégory Dumont1,4, Niall W Duncan1,2,5, Johanna Pokorny6, Pengmin Qin1,5, Rui Dai2,3,7, Francesca Ferri1, Xuchu Weng2,3, Georg Northoff1,2,3,5.
Abstract
The aim of our study was to use functional magnetic resonance imaging to investigate how spontaneous activity interacts with evoked activity, as well as how the temporal structure of spontaneous activity, that is, long-range temporal correlations, relate to this interaction. Using an extremely sparse event-related design (intertrial intervals: 52-60 s), a novel blood oxygen level-dependent signal correction approach (accounting for spontaneous fluctuations using pseudotrials) and phase analysis, we provided direct evidence for a nonadditive interaction between spontaneous and evoked activity. We demonstrated the discrepancy between the present and previous observations on why a linear superposition between spontaneous and evoked activity can be seen by using co-occurring signals from homologous brain regions. Importantly, we further demonstrated that the nonadditive interaction can be characterized by phase-dependent effects of spontaneous activity, which is closely related to the degree of long-range temporal correlations in spontaneous activity as indexed by both power-law exponent and phase-amplitude coupling. Our findings not only contribute to the understanding of spontaneous brain activity and its scale-free properties, but also bear important implications for our understanding of neural activity in general.Entities:
Keywords: fMRI; infraslow frequency; scale-free property; spontaneous activity; trial-to-trial variability
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Year: 2017 PMID: 26643354 DOI: 10.1093/cercor/bhv288
Source DB: PubMed Journal: Cereb Cortex ISSN: 1047-3211 Impact factor: 5.357