Literature DB >> 28760982

Low-frequency hippocampal-cortical activity drives brain-wide resting-state functional MRI connectivity.

Russell W Chan1,2, Alex T L Leong1,2, Leon C Ho1,2, Patrick P Gao1,2, Eddie C Wong1,2, Celia M Dong1,2, Xunda Wang1,2, Jufang He3, Ying-Shing Chan4, Lee Wei Lim4, Ed X Wu5,2,4,6.   

Abstract

The hippocampus, including the dorsal dentate gyrus (dDG), and cortex engage in bidirectional communication. We propose that low-frequency activity in hippocampal-cortical pathways contributes to brain-wide resting-state connectivity to integrate sensory information. Using optogenetic stimulation and brain-wide fMRI and resting-state fMRI (rsfMRI), we determined the large-scale effects of spatiotemporal-specific downstream propagation of hippocampal activity. Low-frequency (1 Hz), but not high-frequency (40 Hz), stimulation of dDG excitatory neurons evoked robust cortical and subcortical brain-wide fMRI responses. More importantly, it enhanced interhemispheric rsfMRI connectivity in various cortices and hippocampus. Subsequent local field potential recordings revealed an increase in slow oscillations in dorsal hippocampus and visual cortex, interhemispheric visual cortical connectivity, and hippocampal-cortical connectivity. Meanwhile, pharmacological inactivation of dDG neurons decreased interhemispheric rsfMRI connectivity. Functionally, visually evoked fMRI responses in visual regions also increased during and after low-frequency dDG stimulation. Together, our results indicate that low-frequency activity robustly propagates in the dorsal hippocampal-cortical pathway, drives interhemispheric cortical rsfMRI connectivity, and mediates visual processing.

Keywords:  fMRI; hippocampus; low frequency; optogenetic; resting-state functional connectivity

Mesh:

Year:  2017        PMID: 28760982      PMCID: PMC5565425          DOI: 10.1073/pnas.1703309114

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


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