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| Pàgina inicial > Articles > Articles publicats > Single-layer graphene modulates neuronal communication and augments membrane ion currents |
| Data: | 2018 |
| Resum: | The use of graphene-based materials to engineer sophisticated biosensing interfaces that can adapt to the central nervous system requires a detailed understanding of how such materials behave in a biological context. Graphene's peculiar properties can cause various cellular changes, but the underlying mechanisms remain unclear. Here, we show that single-layer graphene increases neuronal firing by altering membrane-associated functions in cultured cells. Graphene tunes the distribution of extracellular ions at the interface with neurons, a key regulator of neuronal excitability. The resulting biophysical changes in the membrane include stronger potassium ion currents, with a shift in the fraction of neuronal firing phenotypes from adapting to tonically firing. By using experimental and theoretical approaches, we hypothesize that the graphene-ion interactions that are maximized when single-layer graphene is deposited on electrically insulating substrates are crucial to these effects. |
| Ajuts: | European Commission 720270 European Commission 696656 Agencia Estatal de Investigación CTQ2016-76721-R |
| Drets: | Aquest material està protegit per drets d'autor i/o drets afins. Podeu utilitzar aquest material en funció del que permet la legislació de drets d'autor i drets afins d'aplicació al vostre cas. Per a d'altres usos heu d'obtenir permís del(s) titular(s) de drets. |
| Llengua: | Anglès |
| Document: | Article ; recerca ; Versió acceptada per publicar |
| Matèria: | Associated functions ; Biosensing interfaces ; Cellular changes ; Central nervous systems ; Insulating substrates ; Ion interactions ; Neuronal firings ; Theoretical approach ; Action Potentials ; Animals ; Biocompatible Materials ; Cell Communication ; Cells, Cultured ; Graphite ; Nanostructures ; Nerve Net ; Neurons ; Potassium ; Rats |
| Publicat a: | Nature Nanotechnology, Vol. 13 Núm. 8 (August 2018) , p. 755-764, ISSN 1748-3395 |
Postprint 66 p, 14.0 MB |