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Design of Covalently Functionalized Carbon Nanotubes Filled with Metal Oxide Nanoparticles for Imaging, Therapy, and Magnetic Manipulation

机译:用于成像,治疗和磁操纵的共价官能化碳纳米管填充金属氧化物纳米粒子的设计

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Nanocomposites combining multiple functionalities in one single nano-object hold great promise for biomedical applications. In this work, carbon nanotubes (CNTs) were filled with ferrite nanoparticles (NPs) to develop the magnetic manipulation of the nanotubes and their theranostic applications. The challenges were both the filling of CNTs with a high amount of magnetic NPs and their functionalization to form biocompatible water suspensions. We propose here a filling process using CNTs as nanoreactors for high-yield in situ growth of ferrite NPs into the inner carbon cavity. At first, NPs were formed inside the nanotubes by thermal decomposition of an iron stearate precursor. A second filling step was then performed with iron or cobalt stearate precursors to enhance the encapsulation yield and block the formed NPs inside the tubes. Water suspensions were then obtained by addition of amino groups via the covalent functionalization of the external surface of the nanotubes. Microstructural and magnetic characterizations confirmed the confinement of NPs into the anisotropic structure of CNTs making them suitable for magnetic manipulations and MRI detection. Interactions of highly water-dispersible CNTs with tumor cells could be modulated by magnetic fields without toxicity, allowing control of their orientation within the cell and inducing submicron magnetic stirring. The magnetic properties were also used to quantify CNTs cellular uptake by measuring the cell magnetophoretic mobility. Finally, the photothermal ablation of tumor cells could be enhanced by magnetic stimulus, harnessing the hybrid properties of NP loaded-CNTs.
机译:在单个纳米物体中结合多种功能的纳米复合材料在生物医学应用中具有广阔的前景。在这项工作中,碳纳米管(CNT)充满了铁氧体纳米颗粒(NPs),以开发纳米管的磁性操作及其治疗学应用。挑战既是用大量磁性NP填充CNT,又是它们的功能化以形成生物相容的水悬浮液。我们在这里提出一种使用CNTs作为纳米反应器的填充工艺,用于将铁氧体NPs高产率地原位生长到内部碳腔中。首先,通过硬脂酸铁前体的热分解在纳米管内部形成NP。然后用铁或硬脂酸钴前驱物进行第二次填充步骤,以提高包封率并阻塞管内形成的NP。然后通过经由纳米管的外表面的共价官能化添加氨基而获得水悬浮液。微观结构和磁学特征证实了NP被限制在CNT的各向异性结构中,使其适用于磁处理和MRI检测。高度可水分散的CNT与肿瘤细胞的相互作用可以通过磁场进行调节,而不会产生毒性,从而可以控制它们在细胞内的定向并引发亚微米级磁力搅拌。磁性能还用于通过测量细胞的磁致动性来量化CNTs细胞的摄取。最后,利用NP负载的CNT的杂化特性,可以通过磁刺激增强肿瘤细胞的光热消融。

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