Attention reorganizes connectivity across networks in a frequency specific manner

Neuroimage. 2017 Jan 1;144(Pt A):217-226. doi: 10.1016/j.neuroimage.2016.10.014. Epub 2016 Oct 11.

Abstract

Attention allows our brain to focus its limited resources on a given task. It does so by selective modulation of neural activity and of functional connectivity (FC) across brain-wide networks. While there is extensive literature on activity changes, surprisingly few studies examined brain-wide FC modulations that can be cleanly attributed to attention compared to matched visual processing. In contrast to prior approaches, we used an ultra-long trial design that avoided transients from trial onsets, included slow fluctuations (<0.1Hz) that carry important information on FC, and allowed for frequency-segregated analyses. We found that FC derived from long blocks had a nearly two-fold higher gain compared to FC derived from traditional (short) block designs. Second, attention enhanced intrinsic (negative or positive) correlations across networks, such as between the default-mode network (DMN), the dorsal attention network (DAN), and the visual system (VIS). In contrast attention de-correlated the intrinsically correlated visual regions. Third, the de-correlation within VIS was driven primarily by high frequencies, whereas the increase in DAN-VIS predominantly by low frequencies. These results pinpoint two fundamentally distinct effects of attention on connectivity. Information flow increases between distinct large-scale networks, and de-correlation within sensory cortex indicates decreased redundancy.

Keywords: Attention; Functional connectivity; Parietal cortex; Visual cortex; fMRI.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Adult
  • Attention / physiology*
  • Connectome / methods*
  • Female
  • Humans
  • Magnetic Resonance Imaging
  • Male
  • Motion Perception / physiology
  • Parietal Lobe / diagnostic imaging
  • Parietal Lobe / physiology*
  • Pattern Recognition, Visual / physiology
  • Visual Cortex / diagnostic imaging
  • Visual Cortex / physiology*
  • Visual Perception / physiology*
  • Young Adult