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Carbon and Silicon Nanomaterials for Medical Nanotechnology Applications.

机译:用于医疗纳米技术应用的碳和硅纳米材料。

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摘要

This dissertation focuses on the development of sp2-carbon- and silicon-based nanomaterials for medical diagnostics and in vivo magnetic field-guided delivery applications. To realize these applications, especially for the development of new in vivo Magnetic Resonance Imaging (MRI) contrast agents (CAs), high solubility in aqueous media is required. Therefore, this work first details development of a new non-covalent method for the preparation of stable aqueous colloidal solution of surfactant-free sp2-carbon nanostructures, as well as a second rapid covalent functionalization procedure to produce highly-water-dispersible honey-comb carbon nanostructures (ca. 50 mg/mL). Next, highly-water-dispersible graphene nanoribbons and Gd3+ ions were together used to produce a high-performance MRI CA for T1- and T2- weighted imaging. In terms of its relaxivity (r1,2 ) values, this new CA material outperforms currently-available clinical CAs by up to 16 times for r1 and 21 times for r2. Finally, sub-micrometer discoidal magnetic nanoconstructs have been produced and studied for applications for in vivo magnetic-field-guided delivery into cancerous tumors. The nanoconstructs were produced by confining ultra-small superparamagnetic iron oxide nanoparticles (USPIOs) within mesoporous silicon which produced T2-weighted MRI CA performance 2.5 times greater than for the free USPIOs themselves. Moreover, these nanoconstructs, under the influence of an external magnetic field, collectively cooperated via a new mechanism to amplify accumulation in melanoma tumors of mice. Overall, the results of this dissertation could aid in the rapid translation of these nanotechnologies into the clinic, while, hopefully, also serving as an inspiration for continued research into the field of Medical Nanotechnology.
机译:本文主要研究基于sp2-碳和硅的纳米材料的开发,用于医学诊断和体内磁场引导的递送应用。为了实现这些应用,特别是为了开发新的体内磁共振成像(MRI)造影剂(CA),需要在水性介质中具有高溶解度。因此,这项工作首先详述了一种新的非共价方法的开发,该方法用于制备稳定的无表面活性剂的sp2-碳纳米结构的胶体水溶液,以及第二种快速共价官能化的方法来生产高度水分散性的蜂窝碳纳米结构(约50 mg / mL)。接下来,将高度水分散性的石墨烯纳米带和Gd3 +离子一起用于生产用于T1和T2加权成像的高性能MRICA。就其弛豫度(r1,2)值而言,这种新的CA材料比r1的性能高出16倍,比r2的性能高21倍。最后,已经生产和研究了亚微米盘状磁性纳米结构,以用于体内磁场引导的递送入癌性肿瘤的应用。纳米结构是通过将超小型超顺磁性氧化铁纳米粒子(USPIO)限制在介孔硅中而产生的,T2加权MRI CA性能是游离USPIO自身的2.5倍。此外,这些纳米结构在外部磁场的影响下,通过一种新的机制共同协作,以放大小鼠黑素瘤肿瘤中的积累。总体而言,本论文的研究结果可以帮助将这些纳米技术快速转化为临床应用,同时希望也可以为医学纳米技术领域的持续研究提供灵感。

著录项

  • 作者

    Gizzatov, Ayrat.;

  • 作者单位

    Rice University.;

  • 授予单位 Rice University.;
  • 学科 Biochemistry.;Nanotechnology.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 138 p.
  • 总页数 138
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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