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基于由 3D 功能化石墨烯框架组装的独立纳米杂化纸电极的原位电化学传感和实时监测活细胞。

In Situ Electrochemical Sensing and Real-Time Monitoring Live Cells Based on Freestanding Nanohybrid Paper Electrode Assembled from 3D Functionalized Graphene Framework.

机构信息

Key Laboratory of Material Chemistry for Energy Conversion and Storage, Ministry of Education, Hubei Key Laboratory of Material Chemistry and Service Failure, School of Chemistry and Chemical Engineering, Huazhong University of Science and Technology , Wuhan 430074, P. R. China.

Union Hospital, Tongji Medical College, Huazhong University of Science and Technology , Wuhan 430022, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2017 Nov 8;9(44):38201-38210. doi: 10.1021/acsami.7b08781. Epub 2017 Oct 24.

Abstract

In this work, we develop a new type of freestanding nanohybrid paper electrode assembled from 3D ionic liquid (IL) functionalized graphene framework (GF) decorated by gold nanoflowers (AuNFs), and explore its practical application in in situ electrochemical sensing of live breast cell samples by real-time tracking biomarker HO released from cells. The AuNFs modified IL functionalized GF (AuNFs/IL-GF) was synthesized via a facile and efficient dopamine-assisted one-pot self-assembly strategy. The as-obtained nanohybrid assembly exhibits a typical 3D hierarchical porous structure, where the highly active electrocatalyst AuNFs are well dispersed on IL-GF scaffold. And the graft of hydrophilic IL molecules (i.e., 1-butyl-3-methylimidazolium tetrafluoroborate, BMIMBF) on graphene nanosheets not only avoids their agglomeration and disorder stacking during the self-assembly but also endows the integrated IL-GF monolithic material with unique hydrophilic properties, which enables it to be readily dispersed in aqueous solution and processed into freestanding paperlike material. Because of the unique structural properties and the combinational advantages of different components in the AuNFs/IL-GF composite, the resultant nanohybrid paper electrode exhibits good nonenzymatic electrochemical sensing performance toward HO. When used in real-time tracking HO secreted from different breast cells attached to the paper electrode without or with radiotherapy treatment, the proposed electrochemical sensor based on freestanding AuNFs/IL-GF paper electrode can distinguish the normal breast cell HBL-100 from the cancer breast cells MDA-MB-231 and MCF-7 cells, and assess the radiotherapy effects to different breast cancer cells, which opens a new horizon in real-time monitoring cancer cells by electrochemical sensing platform.

摘要

在这项工作中,我们开发了一种新型的独立纳米杂化纸电极,由 3D 离子液体 (IL) 功能化的石墨烯框架 (GF) 组装而成,该框架由金纳米花 (AuNFs) 修饰,并通过实时跟踪细胞释放的生物标志物 HO 来探索其在原位电化学检测活乳腺癌细胞样品中的实际应用。AuNFs 修饰的 IL 功能化 GF (AuNFs/IL-GF) 是通过简便高效的多巴胺辅助一锅自组装策略合成的。所获得的纳米杂化组装体呈现出典型的 3D 分级多孔结构,其中高活性电催化剂 AuNFs 很好地分散在 IL-GF 支架上。并且,亲水性 IL 分子(即 1-丁基-3-甲基咪唑四氟硼酸盐,BMIMBF)接枝在石墨烯纳米片上不仅避免了自组装过程中它们的聚集和无序堆积,而且赋予了整体 IL-GF 整体材料独特的亲水性,使其易于分散在水溶液中并加工成独立的纸状材料。由于 AuNFs/IL-GF 复合材料的独特结构特性和不同成分的组合优势,所得纳米杂化纸电极对 HO 表现出良好的非酶电化学传感性能。当用于实时跟踪附着在纸电极上的不同乳腺癌细胞分泌的 HO 时,基于独立的 AuNFs/IL-GF 纸电极的电化学传感器可以区分正常乳腺细胞 HBL-100 与癌症乳腺细胞 MDA-MB-231 和 MCF-7 细胞,并评估不同乳腺癌细胞的放射治疗效果,为电化学传感平台实时监测癌细胞开辟了新的视野。

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