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A versatile multicomponent assembly via β-cyclodextrin host-guest chemistry on graphene for biomedical applications

机译:通过β-环糊精主客体化学在石墨烯上的多功能多组分组装,用于生物医学应用

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摘要

A multi-component nanosystem based on graphene and comprising individual cyclodextrins at its surface is assembled, creating hybrid structures enabling new and important functionalities: optical imaging, drug storage, and cell targeting for medical diagnosis and treatment. These nanohybrids are part of a universal system of interchangeable units, capable of mutilple functionalities. The surface components, made of individual β-cyclodextrin molecules, are the "hosts" for functional units, which may be used as imaging agents, for anti-cancer drug delivery, and as tumor-specific ligands. Specifically, individual β-cyclodextrin (β-CD), with a known capability to host various molecules, is considered a module unit that is assembled onto graphene nanosheet (GNS). The cyclodextrin-functionalized graphene nanosheet (GNS/β-CD) enables "host-guest" chemistry between the nanohybrid and functional "payloads". The structure, composition, and morphology of the graphene nanosheet hybrid have been investigated. The nanohybrid, GNS/β-CD, is highly dispersive in various physiological solutions, reflecting the high biostability of cyclodextrin. Regarding the host capability, the nanohybrid is fully capable of selectively accommodating various biological and functional agents in a controlled fashion, including the antivirus drug amantadine, fluorescent dye [5(6)-carboxyfluorescein], and Arg-Gly-Asp (RGD) peptide-targeting ligands assisted by an adamantine linker. The loading ratio of 5(6)-carboxyfluorescein is as high as 110% with a drug concentration of 0.45 mg mL~(-1). The cyclic RGD-functionalized nanohybrid exhibits remarkable targeting for HeLa cells. A unique carrier system is engineered from β-cyclodextrin (β-CD) as a unit module assembled in a multiple fashion onto graphene nanosheets (GNS). Such carrier is capable of accommodating a variety of functional or biological "guest" molecules, providing needed functionalities such as fluorescence for in vivo imaging, anticancer drug for therapy, or target moieties for cell targeting.
机译:组装了一个基于石墨烯并在其表面包含单个环糊精的多组分纳米系统,形成了能够实现新的重要功能的杂化结构:光学成像,药物存储以及用于医学诊断和治疗的细胞靶向。这些纳米杂化物是通用单元可互换单元系统的一部分,具有多种功能。由单个β-环糊精分子制成的表面组分是功能单元的“主体”,可以用作显像剂,抗癌药物的递送和肿瘤特异性配体。具体而言,具有已知能力容纳各种分子的单个β-环糊精(β-CD)被认为是组装在石墨烯纳米片(GNS)上的模块单元。环糊精官能化的石墨烯纳米片(GNS /β-CD)可以在纳米杂化物和功能“有效载荷”之间实现“主客体”化学反应。已经研究了石墨烯纳米片杂化物的结构,组成和形态。纳米混杂物GNS /β-CD在各种生理溶液中高度分散,反映了环糊精的高生物稳定性。关于宿主的能力,纳米杂化物完全能够以受控方式选择性容纳各种生物和功能试剂,包括抗病毒药物金刚烷胺,荧光染料[5(6)-羧基荧光素]和Arg-Gly-Asp(RGD)肽金刚烷接头辅助的靶向性配体。 5(6)-羧基荧光素的负载率高达110%,药物浓度为0.45 mg mL〜(-1)。环状RGD官能化的纳米杂化物对HeLa细胞具有出色的靶向性。独特的载体系统是由β-环糊精(β-CD)设计成单元模块,以多种方式组装到石墨烯纳米片(GNS)上。这种载体能够容纳各种功能或生物学的“客体”分子,提供所需的功能,例如用于体内成像的荧光,用于治疗的抗癌药或用于细胞靶向的靶标部分。

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