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Nanomaterials for Biological Applications: Drug Delivery and Bio-sensing.

机译:用于生物应用的纳米材料:药物递送和生物传感。

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摘要

The idea of utilizing nanomaterials in bio-related applications has been extensively practiced during the recent decades. Magnetic nanoparticles (MPs), especially superparamagnetic iron oxide nanoparticles have been demonstrated as promising candidates for biomedicine. A protective coating process with biocompatible materials is commonly performed on MPs to further enhance their colloidal and chemical stability in the physiological environment. Mesoporous hollow silica is another class of important nanomaterials that are extensively studied in drug delivery area for their ability to carry significant amount of guest molecules and release in a controlled manner.;In this study, different synthetic approaches that are able to produce hybrid nanomaterials, constituting both mesoporous hollow silica and magnetite nanoparticles, are described. In a two-step approach, pre-synthesized magnetite nanoparticles are either covalently conjugated to the surface of polystyrene beads and coated with silica or embedded/enclosed in the porous shell during a nanosized CaCO3 templated condensation of silica precursors, followed by acid dissolution to generate the hollow structure. It was demonstrated that the hollow interior is able to load large amount of hydrophobic drugs such as ibuprofen while the mesoporous shell is capable of prolonged drug. In order to simplify the fabrication procedure, a novel in-situ method is developed to coat silica surface with magnetite nanoparticles. By refluxing the iron precursor with mesoporous hollow silica nanospheres in polyamine/polyalcohol mixed media, one is able to directly form a high density layer of magnetite nanoparticles on silica surface during the synthesis, leaving reactive amine groups for further surface functionalization such as fluorescence conjugation. This approach provides a convenient synthesis for silica nanostructures with promising potential for drug delivery and multimodal imaging.;In addition to nanoparticles, nanowires also benefit the research and development of instruments in clinical diagnosis. Semiconductive nanowires have demonstrated their advantage in the fabrication of lab-on-a-chip devices to detect many charge carrying molecules such as antibody and DNA. In our study, In2O3 and silicon nanowire based field effect transistors were fabricated through bottom-up and top-down approaches, respectively, for ultrasensitive bio-detection of toxins such as ricin. The specific binding and non-specific interaction of nanowires with antibodies were also investigated.;Mesoporous hollow silica, Magnetic nanoparticle, Drug delivery, Field-effect transistor biosensor, In2O3 nanowire, Silicon nanowire.
机译:近几十年来,在生物相关应用中利用纳米材料的想法已得到广泛实践。磁性纳米粒子(MPs),尤其是超顺磁性氧化铁纳米粒子已被证明是有前途的生物医学候选药物。通常在MP上使用生物相容性材料进行保护性涂层处理,以进一步增强其在生理环境中的胶体和化学稳定性。介孔中空二氧化硅是另一类重要的纳米材料,由于其能够携带大量客体分子并以受控方式释放的能力,因此在药物输送领域进行了广泛研究;在这项研究中,不同的合成方法能够生产杂化纳米材料,描述了同时包含中孔空心二氧化硅和磁铁矿纳米粒子的金属。采用两步法,将预先合成的磁铁矿纳米粒子共价结合到聚苯乙烯珠粒的表面并涂上二氧化硅,或者在纳米级CaCO3模板化的二氧化硅前体缩合过程中,将其嵌入/封闭在多孔壳中,然后进行酸溶解以生成空心结构。已经证明,中空内部能够负载大量的疏水性药物,例如布洛芬,而中孔壳能够延长药物的寿命。为了简化制造过程,开发了一种新颖的原位方法,用磁铁矿纳米颗粒涂覆二氧化硅表面。通过在多胺/多元醇混合介质中使铁前驱物与中孔空心二氧化硅纳米球回流,可以在合成过程中直接在二氧化硅表面上形成高密度的磁铁矿纳米颗粒层,从而留下反应性胺基团用于进一步的表面功能化(例如荧光共轭)。这种方法为二氧化硅纳米结构提供了方便的合成方法,具有潜在的药物输送和多峰成像潜力。除了纳米颗粒,纳米线还有益于临床诊断仪器的研究和开发。半导电纳米线已经证明了其在制造芯片实验室设备中的优势,可以检测许多电荷携带分子,例如抗体和DNA。在我们的研究中,分别通过自下而上和自上而下的方法制造了基于In2O3和硅纳米线的场效应晶体管,以超灵敏地检测毒素(例如蓖麻毒素)。还研究了纳米线与抗体的特异性结合和非特异性相互作用。介孔空心二氧化硅,磁性纳米粒子,药物递送,场效应晶体管生物传感器,In2O3纳米线,硅纳米线。

著录项

  • 作者

    Ma, Hui.;

  • 作者单位

    University of New Orleans.;

  • 授予单位 University of New Orleans.;
  • 学科 Chemistry Biochemistry.;Nanoscience.;Health Sciences Pharmacy.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 151 p.
  • 总页数 151
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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