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. 2017 Jul;38(7):3659-3674.
doi: 10.1002/hbm.23621. Epub 2017 Apr 22.

Transition of the functional brain network related to increasing cognitive demands

Affiliations

Transition of the functional brain network related to increasing cognitive demands

Karolina Finc et al. Hum Brain Mapp. 2017 Jul.

Abstract

Network neuroscience provides tools that can easily be used to verify main assumptions of the global workspace theory (GWT), such as the existence of highly segregated information processing during effortless tasks performance, engagement of multiple distributed networks during effortful tasks and the critical role of long-range connections in workspace formation. A number of studies support the assumptions of GWT by showing the reorganization of the whole-brain functional network during cognitive task performance; however, the involvement of specific large scale networks in the formation of workspace is still not well-understood. The aims of our study were: (1) to examine changes in the whole-brain functional network under increased cognitive demands of working memory during an n-back task, and their relationship with behavioral outcomes; and (2) to provide a comprehensive description of local changes that may be involved in the formation of the global workspace, using hub detection and network-based statistic. Our results show that network modularity decreased with increasing cognitive demands, and this change allowed us to predict behavioral performance. The number of connector hubs increased, whereas the number of provincial hubs decreased when the task became more demanding. We also found that the default mode network (DMN) increased its connectivity to other networks while decreasing connectivity between its own regions. These results, apart from replicating previous findings, provide a valuable insight into the mechanisms of the formation of the global workspace, highlighting the role of the DMN in the processes of network integration. Hum Brain Mapp 38:3659-3674, 2017. © 2017 Wiley Periodicals, Inc.

Keywords: default mode network; fMRI; functional connectivity; global workspace theory; graph theory; modularity; n-back; network-based statistic; working memory.

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Figures

Figure 1
Figure 1
Differences in network measures and behavioral outcomes between task conditions. A presents levels of performance measured as pRT. In B and C, mean cost and mean modularity (Q) of functional networks are shown for both task conditions. Symbol *** indicates a significant difference in the corresponding measure between the task conditions (P < 0.05). In D, individual differences in modularity (ΔQ) are plotted against individual differences in pRT between 1‐back and 2‐back. Positive correlation between these measures is reflected by a solid line of best fit.
Figure 2
Figure 2
Top panel: connector hubs (A) and provincial hubs (B) drawn in the brain space. The size of the hub region reflects the frequency of occurrence of this region as a hub in a population of functional networks; thus, the largest spheres indicate regions identified as hubs for most participants. The colors of hubs reflect the regions' assignment to well‐established functional brain systems described by Power et al. [2011]. Bottom panel: weakened and strengthened networks in terms of predefined brain systems. The left panels show matrices reflecting the total number of edges linking different communities. Note that the largest group of weakened network (C) edges consists of edges within the DMN, while the vast majority of the strengthened network (E) edges link the DMN to other brain systems. The right panels show weakened (D) and strengthened networks (F) in the brain space for an NBS threshold τ = 4.0. The size of the edge reflects the value of the statistical test on that edge; thus, the thickest lines represent the edges with the largest differences in the connectivity strength between the task conditions. The edges are color‐coded in the following way: blue = within‐DMN edges, light blue = within‐community edges (not including the DMN), red = edges linking the DMN to other systems, yellow = edges linking different communities (not including the DMN).
Figure 3
Figure 3
Individual differences in the change in participation coefficient (PC) of the DMN nodes and the change in modularity (ΔQ) and behavioral performance (ΔpRT) between the task conditions (1‐back minus 2‐back). Individuals who exhibited substantial increases in participation coefficient of the DMN nodes from 1‐back to 2‐back tended to have larger decline in modularity (A) and smaller decline in behavioral performance (B).

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