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Development of multifunctional gold nanoparticle reagents and applied use as metal ion sensors, drug platforms, and bioprobes.

机译:多功能金纳米粒子试剂的开发并将其用作金属离子传感器,药物平台和生物探针。

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摘要

Gold nanoparticles are a class of materials expected to have a large impact in future biomedical and environmental applications due to their size-dependent core properties and ease of functionalization. Surface coatings, composed of one or multiple functional ligands, dictate physical properties of the materials and facilitate interactions with molecular species, biomolecules, surfaces, and other nanomaterials. Determining the role of ligand shell composition on nanoparticle reactivity is currently hindered by inadequate synthetic methods to produce well-defined materials.;New synthetic approaches are provided in this dissertation to systematically control the number, type, lengths, and steric interactions of functionalized ligands amidst otherwise passivating ligands on gold nanoparticles. Access to these libraries of nanoparticles was afforded by improvements in precursor ligand design, use of a flow reactor for greater reproducibility and high throughput, and corroborative characterization of both the core and ligand shell.;Fundamental exploration of nanoparticle structure-reactivity relationships was enabled as a result of synthetic improvements to yield precision controlled multifunctional nanoparticles. The role of polyvalency of malonamide functionalized gold nanoparticles on binding lanthanide ions and nanoparticle assembly is outlined. Findings indicating that low-reactive group densities were most favorable for reactivity and were expanded to produce a more general nanoparticle reagent. Water-soluble gold nanoparticles with a tailored number of azide functional ligands are reported. This azide-nanoparticle building block, or reagent, can be produced in one step, in contrast to typical methods involving inefficient multi-step exchanges. Our reagent was used as a precursor to more complex nanomaterials by "click" chemistry. Finally, gold nanoparticles were produced with drugs modified for surface functionalization. The nanoparticle conjugates with an optimized polyvalency of surface-bound drugs allowed for the binding of a cardiovascular health biomarker enzyme with very high potency. The dissertation work culminated in the production of a fluorescent, drug-loaded, biocompatible probe to visualize targeting on a cellular level.;This dissertation includes previously published and unpublished co-authored material.
机译:金纳米颗粒是一类材料,由于其尺寸依赖的核心特性和易于功能化,有望在未来的生物医学和环境应用中产生巨大影响。由一种或多种功能性配体组成的表面涂层决定了材料的物理特性,并促进了与分子种类,生物分子,表面和其他纳米材料的相互作用。目前尚不充分的合成方法来生产定义明确的材料阻碍了配体壳组成对纳米粒子反应性的作用的确定。本论文提供了新的合成方法来系统地控制功能化配体之间的数量,类型,长度和空间相互作用否则钝化金纳米颗粒上的配体。通过改进前体配体设计,使用流动反应器获得更高的重现性和高通量以及核和配体壳的确证性表征,可以访问这些纳米颗粒库;对纳米颗粒结构-反应性关系进行了基础探索合成改进以生产可精确控制的多功能纳米颗粒的结果。概述了丙二酰胺官能化的金纳米粒子的多价对结合镧系离子和纳米粒子组装的作用。发现表明低反应性基团密度对反应性最有利,并且被扩展以生产更通用的纳米粒子试剂。报道了具有定制数量的叠氮化物功能配体的水溶性金纳米颗粒。与涉及效率低下的多步交换的典型方法相反,这种叠氮化物-纳米颗粒的结构单元或试剂可以一步生产。通过“点击”化学,我们的试剂被用作更复杂的纳米材料的前体。最终,用修饰的用于表面功能化的药物生产了金纳米颗粒。具有优化的表面结合药物多价性的纳米粒子结合物允许非常高的效能结合心血管健康生物标记酶。论文的工作最终产生了一种荧光的,载有药物的,生物相容的探针,可以在细胞水平上可视化靶标。该论文包括以前发表和未发表的合著材料。

著录项

  • 作者

    Kennedy, Zachary Colburn.;

  • 作者单位

    University of Oregon.;

  • 授予单位 University of Oregon.;
  • 学科 Organic chemistry.;Nanoscience.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 196 p.
  • 总页数 196
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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