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Interfacing Graphene-Based Materials With Neural Cells

机译:石墨烯基材料与神经细胞的接口

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摘要

The scientific community has witnessed an exponential increase in the applications of graphene and graphene-based materials in a wide range of fields, from engineering to electronics to biotechnologies and biomedical applications. For what concerns neuroscience, the interest raised by these materials is two-fold. On one side, nanosheets made of graphene or graphene derivatives (graphene oxide, or its reduced form) can be used as carriers for drug delivery. Here, an important aspect is to evaluate their toxicity, which strongly depends on flake composition, chemical functionalization and dimensions. On the other side, graphene can be exploited as a substrate for tissue engineering. In this case, conductivity is probably the most relevant amongst the various properties of the different graphene materials, as it may allow to instruct and interrogate neural networks, as well as to drive neural growth and differentiation, which holds a great potential in regenerative medicine. In this review, we try to give a comprehensive view of the accomplishments and new challenges of the field, as well as which in our view are the most exciting directions to take in the immediate future. These include the need to engineer multifunctional nanoparticles (NPs) able to cross the blood-brain-barrier to reach neural cells, and to achieve on-demand delivery of specific drugs. We describe the state-of-the-art in the use of graphene materials to engineer three-dimensional scaffolds to drive neuronal growth and regeneration in vivo, and the possibility of using graphene as a component of hybrid composites/multi-layer organic electronics devices. Last but not least, we address the need of an accurate theoretical modeling of the interface between graphene and biological material, by modeling the interaction of graphene with proteins and cell membranes at the nanoscale, and describing the physical mechanism(s) of charge transfer by which the various graphene materials can influence the excitability and physiology of neural cells.
机译:科学界见证了石墨烯和基于石墨烯的材料在从工程到电子学到生物技术和生物医学应用的广泛领域中的应用呈指数增长。对于神经科学而言,这些材料引起的兴趣是双重的。一方面,由石墨烯或石墨烯衍生物(氧化石墨烯或其还原形式)制成的纳米片可用作药物递送的载体。在这里,重要的方面是评估其毒性,这在很大程度上取决于薄片的组成,化学功能化和尺寸。另一方面,石墨烯可以用作组织工程的基质。在这种情况下,电导率可能是不同石墨烯材料的各种特性中最相关的,因为它可以指导和询问神经网络,并驱动神经的生长和分化,这在再生医学中具有巨大的潜力。在这篇综述中,我们试图全面概述该领域的成就和新挑战,以及我们认为这是近期内最令人振奋的方向。其中包括需要设计能够穿过血脑屏障到达神经细胞并实现特定药物按需递送的多功能纳米颗粒(NPs)。我们描述了使用石墨烯材料设计三维支架以驱动体内神经元生长和再生的最新技术,以及使用石墨烯作为混合复合材料/多层有机电子设备的组成部分的可能性。最后但并非最不重要的一点是,我们通过对石墨烯与纳米级蛋白质和细胞膜之间的相互作用进行建模,并描述电荷转移的物理机理,来满足对石墨烯与生物材料之间界面的精确理论建模的需求。各种石墨烯材料会影响神经细胞的兴奋性和生理。

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