Skip to Main Content (Press Enter)

Logo UNIMI
  • ×
  • Home
  • Persone
  • Attività
  • Ambiti
  • Strutture
  • Pubblicazioni
  • Terza Missione

Expertise & Skills
Logo UNIMI

|

Expertise & Skills

unimi.it
  • ×
  • Home
  • Persone
  • Attività
  • Ambiti
  • Strutture
  • Pubblicazioni
  • Terza Missione
  1. Pubblicazioni

Network topology of NaV1.7 mutations in sodium channel-related painful disorders

Articolo
Data di Pubblicazione:
2017
Citazione:
Network topology of NaV1.7 mutations in sodium channel-related painful disorders / D. Kapetis, J. Sassone, Y. Yang, B. Galbardi, M.N. Xenakis, R.L. Westra, R. Szklarczyk, P. Lindsey, C.G. Faber, M. Gerrits, I.S.J. Merkies, S.D. Dib-hajj, M. Mantegazza, S.G. Waxman, G. LAURIA PINTER, M.M. Taiana, M. Marchi, R. Lombardi, D. Cazzato, F. Boneschi Martinelli, A. Zauli, F. Clarelli, S. Santoro, I. Lopez, A. Quattrini, J. Hoeijmakers, M. Sopacua, B. De Greef, H.J.M. Smeets, R. Al Momani, J.M. Vanoevelen, I. Eijkenboom, S. Cestãle, O. Chever, R. Malik, M. Tavakoli, D. Ziegler, F. MARTINELLI BONESCHI. - In: BMC SYSTEMS BIOLOGY. - ISSN 1752-0509. - 11:1(2017 Feb). [10.1186/s12918-016-0382-0]
Abstract:
Background: Gain-of-function mutations in SCN9A gene that encodes the voltage-gated sodium channel NaV1.7 have been associated with a wide spectrum of painful syndromes in humans including inherited erythromelalgia, paroxysmal extreme pain disorder and small fibre neuropathy. These mutations change the biophysical properties of NaV1.7 channels leading to hyperexcitability of dorsal root ganglion nociceptors and pain symptoms. There is a need for better understanding of how gain-of-function mutations alter the atomic structure of Nav1.7. Results: We used homology modeling to build an atomic model of NaV1.7 and a network-based theoretical approach, which can predict interatomic interactions and connectivity arrangements, to investigate how pain-related NaV1.7 mutations may alter specific interatomic bonds and cause connectivity rearrangement, compared to benign variants and polymorphisms. For each amino acid substitution, we calculated the topological parameters betweenness centrality (Bct), degree (D), clustering coefficient (CCct), closeness (Cct), and eccentricity (Ect), and calculated their variation (value= mutantvalue-WTvalue). Pathogenic NaV1.7 mutations showed significantly higher variation of |Bct| compared to benign variants and polymorphisms. Using the cut-off value ±0.26 calculated by receiver operating curve analysis, we found that Bctcorrectly differentiated pathogenic NaV1.7 mutations from variants not causing biophysical abnormalities (nABN) and homologous SNPs (hSNPs) with 76% sensitivity and 83% specificity. Conclusions: Our in-silico analyses predict that pain-related pathogenic NaV1.7 mutations may affect the network topological properties of the protein and suggest |Bct| value as a potential in-silico marker.
Tipologia IRIS:
01 - Articolo su periodico
Keywords:
network analysis; neuropathic pain; sodium channel; structural modeling; computational biology; humans; models, molecular; mutagenesis; nav1.7 voltage-gated sodium channel; pain; polymorphism, single nucleotide; protein conformation; mutation; protein interaction mapping; structural biology; modeling and simulation; molecular biology; computer science applications1707 computer vision and pattern recognition; applied mathematics
Elenco autori:
D. Kapetis, J. Sassone, Y. Yang, B. Galbardi, M.N. Xenakis, R.L. Westra, R. Szklarczyk, P. Lindsey, C.G. Faber, M. Gerrits, I.S.J. Merkies, S.D. Dib-hajj, M. Mantegazza, S.G. Waxman, G. LAURIA PINTER, M.M. Taiana, M. Marchi, R. Lombardi, D. Cazzato, F. Boneschi Martinelli, A. Zauli, F. Clarelli, S. Santoro, I. Lopez, A. Quattrini, J. Hoeijmakers, M. Sopacua, B. De Greef, H.J.M. Smeets, R. Al Momani, J.M. Vanoevelen, I. Eijkenboom, S. Cestãle, O. Chever, R. Malik, M. Tavakoli, D. Ziegler, F. MARTINELLI BONESCHI
Autori di Ateneo:
LAURIA PINTER GIUSEPPE ( autore )
MARTINELLI BONESCHI FILIPPO ( autore )
Link alla scheda completa:
https://air.unimi.it/handle/2434/529124
Link al Full Text:
https://air.unimi.it/retrieve/handle/2434/529124/918423/Network%20topology%20Nav1.7.pdf
  • Aree Di Ricerca

Aree Di Ricerca

Settori


Settore MED/26 - Neurologia
  • Informazioni
  • Assistenza
  • Accessibilità
  • Privacy
  • Utilizzo dei cookie
  • Note legali

Realizzato con VIVO | Progettato da Cineca | 26.1.3.0