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首页> 外文期刊>Journal of tissue engineering and regenerative medicine >Graphene nanomaterials as biocompatible and conductive scaffolds for stem cells: impact for tissue engineering and regenerative medicine
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Graphene nanomaterials as biocompatible and conductive scaffolds for stem cells: impact for tissue engineering and regenerative medicine

机译:石墨烯纳米材料作为干细胞的生物相容性和导电性支架:对组织工程和再生医学的影响

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The discovery of the interesting intrinsic properties of graphene, a two-dimensional nanomaterial, has boosted further research and development for various types of applications from electronics to biomedicine. During the last decade, graphene and several graphene-derived materials, such as graphene oxide, carbon nanotubes, activated charcoal composite, fluorinated graphenes and three-dimensional graphene foams, have been extensively explored as components of biosensors or theranostics, or to remotely control cell-substrate interfaces, because of their remarkable electro-conductivity. To date, despite the intensive progress in human stem cell research, only a few attempts to use carbon nanotechnology in the stem cell field have been reported. Interestingly, most of the recent in vitro studies indicate that graphene-based nanomaterials (i.e. mainly graphene, graphene oxide and carbon nanotubes) promote stem cell adhesion, growth, expansion and differentiation. Although cell viability in vitro is not affected, their potential nanocytoxicity (i.e. nanocompatibility and consequences of uncontrolled nanobiodegradability) in a clinical setting using humans remains unknown. Therefore, rigorous internationally standardized clinical studies in humans that would aim to assess their nanotoxicology are requested. In this paper we report and discuss the recent and pertinent findings about graphene and derivatives as valuable nanomaterials for stem cell research (i.e. culture, maintenance and differentiation) and tissue engineering, as well as for regenerative, translational and personalized medicine (e.g. bone reconstruction, neural regeneration). Also, from scarce nanotoxicological data, we also highlight the importance of functionalizing graphene-based nanomaterials tominimize the cytotoxic effects, as well as other critical safety parameters that remain important to take into consideration when developing nanobionanomaterials. Copyright (C) 2014 John Wiley & Sons, Ltd.
机译:二维纳米材料石墨烯有趣的内在特性的发现,推动了从电子到生物医学的各种应用的进一步研究和开发。在过去的十年中,石墨烯和几种石墨烯衍生的材料(例如氧化石墨烯,碳纳米管,活性炭复合材料,氟化石墨烯和三维石墨烯泡沫)已被广泛地用作生物传感器或诊断学的组成部分,或用于远程控制细胞-基底界面,因为其卓越的导电性。迄今为止,尽管人类干细胞研究取得了巨大进展,但仅报道了在干细胞领域使用碳纳米技术的一些尝试。有趣的是,最近的大多数体外研究表明,基于石墨烯的纳米材料(即主要是石墨烯,氧化石墨烯和碳纳米管)可促进干细胞粘附,生长,扩增和分化。尽管体外细胞存活率没有受到影响,但在使用人的临床环境中其潜在的纳米细胞毒性(即纳米相容性和不可控制的纳米生物降解性的后果)仍然未知。因此,要求进行严格的国际标准化的人类临床研究,以评估其纳米毒理学。在本文中,我们报告并讨论了石墨烯及其衍生物作为干细胞研究(即培养,维持和分化)和组织工程以及再生,转化和个性化医学(例如骨骼重建,神经再生)。同样,从稀缺的纳米毒理学数据中,我们还强调了功能化石墨烯基纳米材料以最小化细胞毒性作用的重要性,以及在开发纳米生物纳米材料时仍要考虑的其他关键安全参数。版权所有(C)2014 John Wiley&Sons,Ltd.

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