Université Lille, CNRS, Centrale Lille, ISEN, Université Valenciennes, UMR 8520-IEMN , F-59000 Lille, France.
RS Research Inc. , Teknopark Istanbul, Pendik, 34912 Istanbul, Turkey.
ACS Appl Mater Interfaces. 2017 Oct 4;9(39):34194-34203. doi: 10.1021/acsami.7b08433. Epub 2017 Sep 21.
Materials based on reduced graphene oxide (rGO) have shown to be amenable to noncovalent functionalization through hydrophobic interactions. The scaffold, however, does not provide sufficient covalent linkage given the low number of reactive carboxyl and alcohol groups typically available on the rGO. The integration of clickable groups, particularly the ones that can undergo efficient conjugation without any metal catalyst, would allow facile functionalization of these materials. This study reports on the noncovalent association of a maleimide-containing catechol (dopa-MAL) surface anchor onto the rGO. Thiol-maleimide chemistry allows thereafter the facile attachment of thiol-containing molecules under ambient metal-free conditions. Although the attachment of glutathione and 6-(ferrocenyl)hexanethiol was used as model thiols, the attachment of a cancer cell targeting cyclic peptide, c(RGDfC), opened the possibility of using the dopa-MAL-modified rGO as a targeted drug delivery system for doxorubicin (DOX). Although free DOX showed to be more effective at killing the human cervical cancer cells (HeLa) over human breast adenocarcinoma cancer cells (MDA-MB-231), the DOX-loaded rGO/dopa-MAL-c (RGDfC) nanostructure showed an opposite effect being notably more effective at targeting and killing the MDA-MB-231 cells. The effect is enhanced upon laser irradiation for 10 min at 2 W cm. The facile fabrication and functionalization to readily obtain a functional material in a modular fashion make this clickable-rGO construct an attractive platform for various applications.
基于还原氧化石墨烯(rGO)的材料已被证明可通过疏水相互作用进行非共价功能化。然而,鉴于 rGO 上通常存在数量有限的反应性羧基和醇基团,该支架提供的共价连接不足。可点击基团的整合,特别是那些无需任何金属催化剂即可进行有效共轭的基团,将允许这些材料的简便功能化。本研究报告了一种含马来酰亚胺的儿茶酚(dopa-MAL)表面锚定基团与 rGO 的非共价结合。此后,巯基-马来酰亚胺化学允许在无金属的环境条件下轻松地连接含巯基的分子。虽然将谷胱甘肽和 6-(二茂铁基)己硫醇用作模型巯基,但连接靶向癌细胞的环肽 c(RGDfC),为使用 dopa-MAL 修饰的 rGO 作为阿霉素(DOX)的靶向药物输送系统开辟了可能性。尽管游离 DOX 对杀伤人类宫颈癌(HeLa)细胞比杀伤人类乳腺腺癌(MDA-MB-231)细胞更有效,但负载 DOX 的 rGO/dopa-MAL-c(RGDfC)纳米结构显示出相反的效果,对靶向和杀伤 MDA-MB-231 细胞更有效。在 2 W cm 的激光照射 10 分钟后,效果增强。这种易于制造和功能化的方法,以模块化方式获得功能材料,使这种可点击的 rGO 结构成为各种应用的有吸引力的平台。