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  4. Computational pipeline to probe NaV1.7 gain-of-function variants in neuropathic painful syndromes
 
research article

Computational pipeline to probe NaV1.7 gain-of-function variants in neuropathic painful syndromes

Toffano, Alberto A.
•
Chiarot, Giacomo
•
Zamuner, Stefano  
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October 21, 2020
Scientific Reports

Applications of machine learning and graph theory techniques to neuroscience have witnessed an increased interest in the last decade due to the large data availability and unprecedented technology developments. Their employment to investigate the effect of mutational changes in genes encoding for proteins modulating the membrane of excitable cells, whose biological correlates are assessed at electrophysiological level, could provide useful predictive clues. We apply this concept to the analysis of variants in sodium channel NaV1.7 subunit found in patients with chronic painful syndromes, by the implementation of a dedicated computational pipeline empowering different and complementary techniques including homology modeling, network theory, and machine learning. By testing three templates of different origin and sequence identities, we provide an optimal condition for its use. Our findings reveal the usefulness of our computational pipeline in supporting the selection of candidates for cell electrophysiology assay and with potential clinical applications.

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Type
research article
DOI
10.1038/s41598-020-74591-y
Web of Science ID

WOS:000585147800036

Author(s)
Toffano, Alberto A.
Chiarot, Giacomo
Zamuner, Stefano  
Marchi, Margherita
Salvi, Erika
Waxman, Stephen G.
Faber, Catharina G.
Lauria, Giuseppe
Giacometti, Achille
Simeoni, Marta
Date Issued

2020-10-21

Publisher

NATURE RESEARCH

Published in
Scientific Reports
Volume

10

Issue

1

Article Number

17930

Subjects

Multidisciplinary Sciences

•

Science & Technology - Other Topics

•

gated sodium-channels

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na(v)1.7 mutation

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disorder mutations

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slow-inactivation

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scn9a mutations

•

alpha-subunit

•

erythromelalgia

•

erythermalgia

•

carbamazepine

•

prediction

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LBS  
Available on Infoscience
November 24, 2020
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/173600
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