International audienceCarbon nanotube substrates are promising candidates for biological applications and devices. Interfacing of these carbon nanotubes with neurons can be controlled by chemical modifications. In this study, we investigated how chemical surface functionalization of multi-walled carbon nanotube arrays (MWNT-A) influences neuronal adhesion and network organization. Functionalization of MWNT-A dramatically modifies the length of neurite fascicles, cluster inter-connection success rate, and the percentage of neurites that escape from the clusters. We propose that chemical functionalization represents a method of choice for developing applications in which neuronal patterning on MWNT-A substrates is required
Objective. Carbon nanotubes (CNTs) are attractive for use in peripheral nerve interfaces because of ...
The application of nanotechnology to contemporary neuroscience promotes innovative solutions that ma...
The application of nanotechnology to contemporary neuroscience promotes innovative solutions that ma...
International audienceCarbon nanotube substrates are promising candidates for biological application...
The chemical properties of carbon nanotubes can be systematically varied by attaching different func...
Carbon nanotubes, owing to their electrical, chemical, mechanical, and thermal properties, are one o...
In recent years, the use of free-standing carbon nanotube (CNT) films for neural tissue engineering ...
Carbon nanotubes are increasingly employed in basic neuroscience approaches, and they have been used...
Researchers have made extensive efforts to mimic or reverse-engineer in vivo neural circuits using m...
Carbon nanotube (CNT)–modified surfaces unequivocally demonstrate their biocompatibility and ability...
Abstract: Carbon nanotubes (CNTs) are cylindrically shaped nanostructures made by sheets of graphene...
4In recent years, the use of free-standing carbon nanotube (CNT) films for neural tissue engineering...
Objective. Carbon nanotubes (CNTs) are attractive for use in peripheral nerve interfaces because of ...
The application of nanotechnology to contemporary neuroscience promotes innovative solutions that ma...
The application of nanotechnology to contemporary neuroscience promotes innovative solutions that ma...
International audienceCarbon nanotube substrates are promising candidates for biological application...
The chemical properties of carbon nanotubes can be systematically varied by attaching different func...
Carbon nanotubes, owing to their electrical, chemical, mechanical, and thermal properties, are one o...
In recent years, the use of free-standing carbon nanotube (CNT) films for neural tissue engineering ...
Carbon nanotubes are increasingly employed in basic neuroscience approaches, and they have been used...
Researchers have made extensive efforts to mimic or reverse-engineer in vivo neural circuits using m...
Carbon nanotube (CNT)–modified surfaces unequivocally demonstrate their biocompatibility and ability...
Abstract: Carbon nanotubes (CNTs) are cylindrically shaped nanostructures made by sheets of graphene...
4In recent years, the use of free-standing carbon nanotube (CNT) films for neural tissue engineering...
Objective. Carbon nanotubes (CNTs) are attractive for use in peripheral nerve interfaces because of ...
The application of nanotechnology to contemporary neuroscience promotes innovative solutions that ma...
The application of nanotechnology to contemporary neuroscience promotes innovative solutions that ma...