Graph theoretical analysis of complex networks in the brain
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Open Access
- 5 July 2007
- journal article
- Published by Springer Nature in Nonlinear Biomedical Physics
- Vol. 1 (1) , 3
- https://doi.org/10.1186/1753-4631-1-3
Abstract
Since the discovery of small-world and scale-free networks the study of complex systems from a network perspective has taken an enormous flight. In recent years many important properties of complex networks have been delineated. In particular, significant progress has been made in understanding the relationship between the structural properties of networks and the nature of dynamics taking place on these networks. For instance, the 'synchronizability' of complex networks of coupled oscillators can be determined by graph spectral analysis. These developments in the theory of complex networks have inspired new applications in the field of neuroscience. Graph analysis has been used in the study of models of neural networks, anatomical connectivity, and functional connectivity based upon fMRI, EEG and MEG. These studies suggest that the human brain can be modelled as a complex network, and may have a small-world structure both at the level of anatomical as well as functional connectivity. This small-world structure is hypothesized to reflect an optimal situation associated with rapid synchronization and information transfer, minimal wiring costs, as well as a balance between local processing and global integration. The topological structure of functional networks is probably restrained by genetic and anatomical factors, but can be modified during tasks. There is also increasing evidence that various types of brain disease such as Alzheimer's disease, schizophrenia, brain tumours and epilepsy may be associated with deviations of the functional network topology from the optimal small-world pattern.Keywords
This publication has 118 references indexed in Scilit:
- Network structure of cerebral cortex shapes functional connectivity on multiple time scalesProceedings of the National Academy of Sciences, 2007
- Efficiency and Cost of Economical Brain Functional NetworksPLoS Computational Biology, 2007
- Small worlds inside big brainsProceedings of the National Academy of Sciences, 2006
- Adaptive reconfiguration of fractal small-world human brain functional networksProceedings of the National Academy of Sciences, 2006
- Robust emergence of small-world structure in networks of spiking neuronsCognitive Neurodynamics, 2006
- Nonoptimal Component Placement, but Short Processing Paths, due to Long-Distance Projections in Neural SystemsPLoS Computational Biology, 2006
- Complex networks: Structure and dynamicsPhysics Reports, 2006
- The brainstem reticular formation is a small-world, not scale-free, networkProceedings Of The Royal Society B-Biological Sciences, 2005
- Uncovering the overlapping community structure of complex networks in nature and societyNature, 2005
- Motifs in Brain NetworksPLoS Biology, 2004