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用于明亮光生物成像的高度表面功能化碳纳米洋葱

Highly surface functionalized carbon nano-onions for bright light bioimaging.

作者信息

Frasconi Marco, Maffeis Viviana, Bartelmess Juergen, Echegoyen Luis, Giordani Silvia

机构信息

Istituto Italiano di Tecnologia (IIT), Nano Carbon Materials Lab, Via Morego 30, 16163 Genova, Italy.

出版信息

Methods Appl Fluoresc. 2015 Oct 15;3(4):044005. doi: 10.1088/2050-6120/3/4/044005.

Abstract

Carbon-based nanomaterials functionalized with fluorescent and water-soluble groups have emerged as platforms for biological imaging because of their low toxicity and ability to be internalized by cells. The development of imaging probes based on carbon nanomaterials for biomedical studies requires the understanding of their biological response as well as the efficient and safety exposition of the nanomaterial to the cell compartment where it is designed to operate. Here, we present a fluorescent probe based on surface functionalized carbon nano-onions (CNOs) for biological imaging. The modification of CNOs by chemical oxidation of the defects on the outer shell of these carbon nanoparticles results in an extensive surface functionalization with carboxyl groups. We have obtained fluorescently labelled CNOs by a reaction involving the amide bond formation between fluoresceinamine and the carboxylic acids groups on the surface of the CNOs. The functionalized CNOs display high emission properties and dispersability in water due to the presence of high surface coverage of carboxylic acid groups that translate in an efficient fluorescent probe for in vitro imaging of HeLa cells, without significant cytotoxicity. The resulting nanomaterial represents a promising platform for biological imaging applications due to the high dispersability in water, its efficient internalization by cancer cells and localization in specific cell compartments.

摘要

由于具有低毒性以及能够被细胞内化,经荧光和水溶性基团功能化的碳基纳米材料已成为生物成像平台。基于碳纳米材料开发用于生物医学研究的成像探针,需要了解它们的生物学反应以及纳米材料在其设计运作的细胞区室中的有效且安全的暴露情况。在此,我们展示一种基于表面功能化碳纳米洋葱(CNOs)的用于生物成像的荧光探针。通过对这些碳纳米颗粒外壳上的缺陷进行化学氧化来修饰CNOs,会导致其表面被羧基广泛功能化。我们通过涉及荧光胺与CNOs表面羧酸基团之间形成酰胺键的反应,获得了荧光标记的CNOs。由于存在高表面覆盖率的羧酸基团,功能化的CNOs在水中表现出高发射特性和分散性,这使其成为用于HeLa细胞体外成像的高效荧光探针,且无明显细胞毒性。所得纳米材料因在水中具有高分散性、能被癌细胞有效内化并定位于特定细胞区室,代表了一种用于生物成像应用的有前景的平台。

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