DocumentCode
14969
Title
Hierarchy of Neural Organization in the Embryonic Spinal Cord: Granger-Causality Graph Analysis of In Vivo Calcium Imaging Data
Author
De Vico Fallani, Fabrizio ; Corazzol, Martina ; Sternberg, Jenna R. ; Wyart, Claire ; Chavez, Mario
Author_Institution
Aramis Project-Team, INRIA Paris-Rocquencourt, Paris, France
Volume
23
Issue
3
fYear
2015
fDate
May-15
Firstpage
333
Lastpage
341
Abstract
The recent development of genetically encoded calcium indicators enables monitoring in vivo the activity of neuronal populations. Most analysis of these calcium transients relies on linear regression analysis based on the sensory stimulus applied or the behavior observed. To estimate the basic properties of the functional neural circuitry, we propose a network approach to calcium imaging recorded at single cell resolution. Differently from previous analysis based on cross-correlation, we used Granger-causality estimates to infer information propagation between the activities of different neurons. The resulting functional network was then modeled as a directed graph and characterized in terms of connectivity and node centralities. We applied our approach to calcium transients recorded at low frequency (4 Hz) in ventral neurons of the zebrafish spinal cord at the embryonic stage when spontaneous coiling of the tail occurs. Our analysis on population calcium imaging data revealed a strong ipsilateral connectivity and a characteristic hierarchical organization of the network hubs that supported established propagation of activity from rostral to caudal spinal cord. Our method could be used for detecting functional defects in neuronal circuitry during development and pathological conditions.
Keywords
biomedical imaging; calcium; directed graphs; neural nets; neurophysiology; regression analysis; Ca; Granger-causality graph analysis; calcium imaging data; calcium transients; caudal spinal cord; characteristic hierarchical organization; directed graph; embryonic spinal cord; frequency 4 Hz; functional neural circuitry; information propagation; ipsilateral connectivity; linear regression analysis; neural organization; rostral spinal cord; sensory stimulus; single cell resolution; ventral neurons; zebrafish spinal cord; Calcium; Embryo; Fluorescence; Imaging; Indexes; Neurons; Spinal cord; Functional connectivity; GCaMP3 fluorescence; graph modeling; neuronal networks; zebrafish;
fLanguage
English
Journal_Title
Neural Systems and Rehabilitation Engineering, IEEE Transactions on
Publisher
ieee
ISSN
1534-4320
Type
jour
DOI
10.1109/TNSRE.2014.2341632
Filename
6872576
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