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通过计算机模拟设计和分析的多模态、pH 敏感和磁辅助阿霉素载体。

Multimodal, pH Sensitive, and Magnetically Assisted Carrier of Doxorubicin Designed and Analyzed by Means of Computer Simulations.

机构信息

Institute of Catalysis and Surface Chemistry, Polish Academy of Sciences , ul. Niezapominajek 8, 30239 Cracow, Poland.

Department of Chemistry, Maria Curie-Sklodowska University , pl. M. Curie-Sklodowskiej 3, 20031 Lublin, Poland.

出版信息

Langmuir. 2018 Feb 20;34(7):2543-2550. doi: 10.1021/acs.langmuir.7b04211. Epub 2018 Feb 7.

Abstract

This work deals with an analysis of drugs carriers based on the structure of a carbon nanotube using large-scale atomistic molecular dynamics simulations. The analyzed systems link several functions in a single architecture. They are as follows: (i) the sidewalls and tips of carbon nanotubes are covalently functionalized by polyethylene glycol-folic acid conjugates, and this approach allows for creation of hydrophytic and biocompatible systems; (ii) doxorubicin is kept in the internal space of a carbon nanotube as a mixture with dyes (p-phenylenediamine or neutral red)-it allows for pH-controlled release or alteration of the interaction topology; (iii) the mixture of doxorubicin and dyes in the nanotube interior is additionally sealed by fullerene nanoparticles which act as pistons at acidic pH and loosen the tangle of polyethylene glycol chains at the nanotube tips. This enhances the release of doxorubicin from the nanotube when compared to the analogous system but without the fullerene caps; (iv) another function of the carrier can be activated by filling of the fullerenes by magnetic material-then, the carrier can be visualized by means of magnetic resonance imaging, it can realize magnetic hyperthermia of tumor cells, and intense rotation of the nanoparticles can be induced by the application of an external magnetic field. That rotation enhances the release of doxorubicin from the nanotube and leads to the increase of the rotational temperature. The studies show that the proposed design of the drug-doxorubicin carrier reveals very promising properties. Its fabrication is absolutely feasible, as all individual stages necessary for its construction have been confirmed in the literature.

摘要

这项工作涉及使用大规模原子分子动力学模拟,基于碳纳米管结构分析药物载体。所分析的系统将多种功能链接在单个架构中。它们如下:(i)碳纳米管的侧壁和尖端通过聚乙二醇-叶酸缀合物进行共价功能化,这种方法可以创建亲水和生物相容的系统;(ii)阿霉素保留在碳纳米管的内部空间中,与染料(对苯二胺或中性红)混合 - 可以实现 pH 控制释放或改变相互作用拓扑结构;(iii)在纳米管内部的阿霉素和染料混合物通过富勒烯纳米粒子进一步密封,富勒烯纳米粒子在酸性 pH 下充当活塞,并松开纳米管尖端处聚乙二醇链的缠结。与没有富勒烯帽的类似系统相比,这增强了阿霉素从纳米管中的释放;(iv)载体的另一个功能可以通过将磁性材料填充到富勒烯中来激活 - 然后,载体可以通过磁共振成像可视化,它可以实现肿瘤细胞的磁热疗,并且可以通过施加外部磁场来诱导纳米粒子的剧烈旋转。这种旋转增强了阿霉素从纳米管中的释放,并导致旋转温度升高。研究表明,所提出的药物 - 阿霉素载体的设计具有非常有前途的特性。其制造是完全可行的,因为其构建所需的所有单个阶段都已在文献中得到证实。

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