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Controlled, Stepwise Assembly of Highly Potent Drugs on Single-Wall Carbon Nanotubes

机译:控制,在单壁碳纳米管上逐步组装高效药物

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To utilize single-wall carbon nanotubes (SWCNTs) for biomedical applications, individual dispersion and coating of SWCNTs with biocompatible molecules are important to avoid triggering cytotoxicity and increase their stability in serum-containing media. One of the common methods for producing SWCNT-based drug delivery is to individually disperse SWCNTs in aqueous solutions with various biocompatible molecules such as DNA, biopolymers, and proteins, followed by attachment of drugs and targeting moieties to the biologically dispersed nanotubes. Another approach that is less frequently used involves attaching drugs to biocompatible molecules prior to dispersing SWCNTs in a solution. Unfortunately, both approaches suffer from low SWCNT dispersion yield and lack adequate control of drug loading process, especially if the drugs are highly hydrophobic. In this talk, we present an extremely facile schema to generate SWCNT-based drug delivery systems via a controlled, stepwise assembly of drugs and biocompatible molecules on preformed SWCNT networks. We first created a three-dimensional freestanding network of SWCNTs in either aqueous or non-aqueous solvents to facilitate loading of drugs; many potent drugs are only soluble in non-aqueous solvents. SWCNTs in freestanding networks were then coated with drugs such as doxorubicin, which is a common model drug used for characterization of drug loading and release processes owing to its optical properties, and paclitaxel, which is a model drug representing highly lipophilic drugs. Drug-coated SWCNT networks were coated with proteins, such as albumins, followed by dispersing in water via gentle sonication with almost no loss of SWCNT dispersion yield. Optical characterization and imaging have shown that SWCNTs/drug/protein complexes are highly individualized in solution and readily internalized by cells upon exposure. The loaded drugs were efficiently released upon internalization and displayed larger reduction in cell viability compared to free drugs. Further, to demonstrate robustness of our approach and to assist with drug release, we coated SWCNTs with biocompatible polymers prior to decorating with drugs to serve as a sacrificial yet assistive layer. The polymer coating did not alter SWCNT dispersion and drug loading significantly and allowed for faster release of drugs upon internalization in the cells. Overall, the proposed method allows for precisely controlled, stepwise assembly of SWCNTs with any drug and biomolecule combinations and could be further developed for multifunctional drug delivery platform utilizing SWCNTs.
机译:为了利用用于生物医学应用的单壁碳纳米管(SWCNTS),具有生物相容性分子的单独分散和涂层对于避免触发细胞毒性并增加含血清介质的稳定性是重要的。制备基于SWCNT的药物递送的常见方法之一是将具有各种生物相容性分子(如DNA,生物聚合物和蛋白质)单独分散SWCNT,然后将药物和靶向部分连接到生物分散的纳米管中。在将SWCNT分散在溶液中,较不常用的另一种常见方法涉及将药物附着到生物相容性分子。不幸的是,两种方法都患有低SWCNT分散产量并缺乏对药物载荷过程的充分控制,特别是如果药物是高度疏水的。在这次谈话中,我们提出了一种极其容易的模式,以通过在预先形成的SWCNT网络上受到控制,逐步组装产生SWCNT的药物输送系统。我们首先在水性或非水溶液中创建了一种三维独立的SWCNT,以促进药物的负载;许多有效的药物仅溶于非水溶剂。然后,自由控制网络中的SWCNTS涂有多柔比星等药物,这是由于其光学性质,以及紫杉醇,其用于表征药物载荷和释放过程的常见模型药物,其是代表高脂药物的模型药物。药物涂覆的SWCNT网络涂有蛋白质,例如白化素,然后通过轻微的超声处理分散在水中,几乎没有SWCNT分散产率。光学表征和成像表明,SWCNT /药物/蛋白质复合物在溶液中高度个体化,并且在暴露时容易被细胞内化。与游离药物相比,在内化时有效地释放负载的药物并显示细胞活力的更大减少。此外,为了证明我们方法的鲁棒性和帮助药物释放,我们在用药物装饰之前用生物相容性聚合物涂覆SWCNT,用作牺牲又辅助层。聚合物涂层未显着改变SWCNT分散体和药物负载,并在细胞内化时允许更快地释放药物。总的来说,所提出的方法允许具有任何药物和生物分子组合的SWCNT的精确控制,并且可以进一步开发用于利用SWCNTS的多功能药物递送平台开发。

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