4.8 Article

Modulation of Early Stage Neuronal Outgrowth through Out-of-Plane Graphene

Journal

NANO LETTERS
Volume 22, Issue 21, Pages 8633-8640

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.2c03171

Keywords

Graphene; neural interface; growth cone establishment; axonal elongation; axonal branching; topography

Funding

  1. European research Council starting Grant BRAIN-ACT [CBET1552833]
  2. Defense Advanced Research Projects Agency [N000141712368]
  3. National Science Foundation (NSF) [R21EB029164]
  4. Office of Naval Research
  5. National Institute of Health
  6. [949478]
  7. [AWD00001593 (416052-5)]

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The correct wiring of a neural network requires neurons to integrate cues from their extracellular environment, and biologically inspired micro- and nanostructured substrates can regulate axonal outgrowth. Graphene, as a conductive neural interface, has the potential to enhance cell adhesion and neural sprouting. This study found that nanoscale protruding features influenced neuronal growth and branching, and the integrin-mediated contact adhesion points and plasma membrane curvature processes played a crucial role in neurons-to-graphene coupling.
The correct wiring of a neural network requires neuron to integrate an incredible repertoire of cues found in their extracellular environment. The astonishing efficiency of this process plays a pivotal role in the correct wiring of the brain during development and axon regeneration. Biologically inspired micro- and nanostructured substrates have been shown to regulate axonal outgrowth. In parallel, several studies investigated graphene's potential as a conductive neural interface, able to enhance cell adhesion, neurite sprouting and outgrowth. Here, we engineered a 3D single- to few-layer fuzzy graphene morphology (3DFG), 3DFG on a collapsed Si nanowire (SiNW) mesh template (NT-3DFGc), and 3DFG on a noncollapsed SiNW mesh template (NT-3DFGnc) as neural-instructive materials. The micrometric protruding features of the NWs templates dictated neuronal growth cone establishment, as well as influencing axon elongation and branching. Furthermore, neurons-to-graphene coupling was investigated with comprehensive view of integrin-mediated contact adhesion points and plasma membrane curvature processes.

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