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基于石墨烯的材料:纳米医学中的缺失一环?

Graphene-based materials: The missing piece in nanomedicine?

机构信息

Centre for Graphene Science, University of Exeter, Exeter, EX4 4QF, UK.

出版信息

Biochem Biophys Res Commun. 2018 Oct 12;504(4):686-689. doi: 10.1016/j.bbrc.2018.09.029. Epub 2018 Sep 11.

Abstract

Nanomedicine utilizes biocompatible nanomaterials for therapeutic as well as imaging purposes for the treatment of various diseases including cancer, neurological disorders and wound infections. Graphene and its modified nanostructures have attracted much attention in recent years in nanomedicine owing to their scalable and cost effective preparation and physiochemical features (high specific surface area, ease in conjugation to peptides/antibodies/proteins and biocompatibility). However, the limited fabrication, functionalization, and in vivo functionalities available in literature indicate inconsistencies regarding the factors affecting in vivo metabolisms, biodistribution as well as toxicity patterns of graphene. It appears that redox signaling pathways, and their proper use to target specific diseases and to improve biocompatibility and interplay between size and optical properties are key determinants to investigate the metabolic fate of such materials. This featured letter provides key insights into the significance and multifunctional roles of redox regulated species in graphene-based materials which can be used to closely mimic therapeutic functions, navigating new paths to nanomedicine and synthetic biology. Furthermore, this letter focuses on the missing functionalities and challenges in using graphene-based materials as both nano-carriers and nano-drugs in various biomedical sectors which might be favorable for multiple payloads and drug targeting in upcoming years.

摘要

纳米医学利用生物相容性纳米材料,实现治疗和成像目的,用于治疗各种疾病,包括癌症、神经紊乱和伤口感染。近年来,由于其可扩展和具有成本效益的制备以及物理化学特性(高比表面积、易于与肽/抗体/蛋白质偶联以及生物相容性),石墨烯及其修饰的纳米结构在纳米医学中引起了广泛关注。然而,文献中可用的有限的制造、功能化和体内功能表明,影响石墨烯体内代谢、生物分布以及毒性模式的因素存在不一致性。似乎氧化还原信号通路及其在靶向特定疾病以及提高生物相容性和大小与光学性质之间相互作用方面的正确应用是研究此类材料代谢命运的关键决定因素。这篇专题信函深入探讨了氧化还原调控物质在基于石墨烯的材料中的重要意义和多功能作用,这些材料可用于紧密模拟治疗功能,为纳米医学和合成生物学开辟新途径。此外,本信函还重点关注了在各个生物医学领域中,将基于石墨烯的材料用作纳米载体和纳米药物时所缺失的功能和挑战,这可能有利于未来多年的多种有效载荷和药物靶向。

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