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Neuronal Functional Connection Graphs among Multiple Areas of the Rat Somatosensory System during Spontaneous and Evoked Activities

Overview of attention for article published in PLoS Computational Biology, June 2013
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Title
Neuronal Functional Connection Graphs among Multiple Areas of the Rat Somatosensory System during Spontaneous and Evoked Activities
Published in
PLoS Computational Biology, June 2013
DOI 10.1371/journal.pcbi.1003104
Pubmed ID
Authors

Antonio G. Zippo, Riccardo Storchi, Sara Nencini, Gian Carlo Caramenti, Maurizio Valente, Gabriele Eliseo M. Biella

Abstract

Small-World Networks (SWNs) represent a fundamental model for the comprehension of many complex man-made and biological networks. In the central nervous system, SWN models have been shown to fit well both anatomical and functional maps at the macroscopic level. However, the functional microscopic level, where the nodes of a network are represented by single neurons, is still poorly understood. At this level, although recent evidences suggest that functional connection graphs exhibit small-world organization, it is not known whether and how these maps, potentially distributed in multiple brain regions, change across different conditions, such as spontaneous and stimulus-evoked activities. We addressed these questions by analyzing the data from simultaneous multi-array extracellular recordings in three brain regions of rats, diversely involved in somatosensory information processing: the ventropostero-lateral thalamic nuclei, the primary somatosensory cortex and the centro-median thalamic nuclei. From both spike and Local Field Potential (LFP) recordings, we estimated the functional connection graphs by using the Normalized Compression Similarity for spikes and the Phase Synchrony for LFPs. Then, by using graph-theoretical statistics, we characterized the functional topology both during spontaneous activity and sensory stimulation. Our main results show that: (i) spikes and LFPs show SWN organization during spontaneous activity; (ii) after stimulation onset, while substantial functional graph reconfigurations occur both in spike and LFPs, small-worldness is nonetheless preserved; (iii) the stimulus triggers a significant increase of inter-area LFP connections without modifying the topology of intra-area functional connections. Finally, investigating computationally the functional substrate that supports the observed phenomena, we found that (iv) the fundamental concept of cell assemblies, transient groups of activating neurons, can be described by small-world networks. Our results suggest that activity of neurons from multiple areas of the rat somatosensory system contributes to the integration of local computations arisen in distributed functional cell assemblies according to the principles of SWNs.

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Geographical breakdown

Country Count As %
United States 2 4%
Japan 2 4%
United Kingdom 2 4%
Netherlands 1 2%
France 1 2%
Belarus 1 2%
Unknown 43 83%

Demographic breakdown

Readers by professional status Count As %
Researcher 17 33%
Student > Ph. D. Student 9 17%
Student > Master 5 10%
Professor > Associate Professor 4 8%
Professor 3 6%
Other 8 15%
Unknown 6 12%
Readers by discipline Count As %
Engineering 14 27%
Agricultural and Biological Sciences 10 19%
Neuroscience 10 19%
Medicine and Dentistry 4 8%
Physics and Astronomy 2 4%
Other 5 10%
Unknown 7 13%