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用于神经系统基于渐进性纳米技术/干细胞的组织工程中的石墨烯支架。

Graphene scaffolds in progressive nanotechnology/stem cell-based tissue engineering of the nervous system.

作者信息

Akhavan Omid

机构信息

Department of Physics, Sharif University of Technology, P.O. Box 11155-9161, Tehran, Iran.

出版信息

J Mater Chem B. 2016 May 21;4(19):3169-3190. doi: 10.1039/c6tb00152a. Epub 2016 Apr 26.

Abstract

Although graphene/stem cell-based tissue engineering has recently emerged and has promisingly and progressively been utilized for developing one of the most effective regenerative nanomedicines, it suffers from low differentiation efficiency, low hybridization after transplantation and lack of appropriate scaffolds required in implantations without any degrading in functionality of the cells. In fact, recent studies have demonstrated that the unique properties of graphene can successfully resolve all of these challenges. Among various stem cells, neural stem cells (NSCs) and their neural differentiation on graphene have attracted a lot of interest, because graphene-based neuronal tissue engineering can promisingly realize the regenerative therapy of various incurable neurological diseases/disorders and the fabrication of neuronal networks. Hence, in this review, we further focused on the potential bioapplications of graphene-based nanomaterials for the proliferation and differentiation of NSCs. Then, various stimulation techniques (including electrical, pulsed laser, flash photo, near infrared (NIR), chemical and morphological stimuli) which have recently been implemented in graphene-based stem cell differentiations were reviewed. The possibility of degradation of graphene scaffolds (NIR-assisted photodegradation of three-dimensional graphene nanomesh scaffolds) was also discussed based on the latest achievements. The biocompatibility of graphene scaffolds and their probable toxicities (especially after the disintegration of graphene scaffolds and distribution of its platelets in the body), which is still an important challenge, were reviewed and discussed. Finally, the initial recent efforts for fabrication of neuronal networks on graphene materials were presented. Since there has been no in vivo application of graphene in neuronal regenerative medicine, we hope that this review can excite further and concentrated investigations on in vivo (and even in vitro) neural proliferation, stimulation and differentiation of stem cells on biocompatible graphene scaffolds having the potential of degradability for the generation of implantable neuronal networks.

摘要

尽管基于石墨烯/干细胞的组织工程学最近才出现,并且已被积极且逐步地用于开发最有效的再生纳米药物之一,但它存在分化效率低、移植后杂交率低以及植入时缺乏合适支架等问题,同时细胞功能也没有任何退化。事实上,最近的研究表明,石墨烯的独特性能能够成功解决所有这些挑战。在各种干细胞中,神经干细胞(NSCs)及其在石墨烯上的神经分化引起了广泛关注,因为基于石墨烯的神经元组织工程有望实现各种不治之症的神经疾病/障碍的再生治疗以及神经元网络的构建。因此,在本综述中,我们进一步聚焦于基于石墨烯的纳米材料在神经干细胞增殖和分化方面的潜在生物应用。然后,综述了最近在基于石墨烯的干细胞分化中实施的各种刺激技术(包括电刺激、脉冲激光刺激、闪光光刺激、近红外(NIR)刺激、化学刺激和形态学刺激)。还基于最新成果讨论了石墨烯支架降解的可能性(三维石墨烯纳米网支架的近红外辅助光降解)。对石墨烯支架的生物相容性及其可能的毒性(特别是在石墨烯支架分解及其薄片在体内分布后)进行了综述和讨论,这仍然是一个重要挑战。最后,介绍了最近在石墨烯材料上构建神经元网络的初步努力。由于石墨烯在神经元再生医学中尚未有体内应用,我们希望本综述能够激发对具有可降解潜力的生物相容性石墨烯支架上干细胞的体内(甚至体外)神经增殖、刺激和分化进行进一步的集中研究,以生成可植入的神经元网络。

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