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Nanoparticles for Cancer Detection and Therapy: Towards Diagnostic Applications of Quantum Dots and Rational Design of Drug Delivery Vehicles.

机译:用于癌症检测和治疗的纳米粒子:量子点的诊断应用和药物运输工具的合理设计。

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摘要

This thesis describes observations, techniques and strategies, which contribute towards the development of nanoparticle based detection and treatment of cancer. Quantum dots and biorecognition molecules were studied towards applications in detection and microgels were used in the rational design of a targeted drug delivery vehicle. The fluorescence intensity of quantum dots was examined in buffers commonly used in molecular biology. The fluorescence intensity of ZnS-capped CdSe quantum dots (QDs) was found to vary significantly, depending on the amount of ZnS capping on the QDs or the concentration, pH and type of buffer the QDs were in. Since fluorescence cannot reliably be used to quantify QDs, an alternative quantification method was developed, which does not rely on their fluorescence. This method employs phage display to identify nanoparticle-specific bacteriophage which were then applied in an assay to quantify QDs in environments where absorbance or fluorescence spectroscopy are ineffective. Biorecognition molecules, which can direct nanoparticles to a molecular target, were also identified through phage display. Phage display on whole cells was used to identify a peptide, which was conjugated with QDs to stain HeLa (cervical cancer) cells. A high-throughput phage display screening strategy was also developed, which could enable the simultaneous identification of multiple biorecognition molecules from a single library. QD-encoded microbead barcodes were conjugated to protein targets and then used to screen a phage display library. The beads and the binding phage were then separated using flow cytometry and fluorescence assisted cell sorting. Finally, biorecognition molecules were combined with nanoparticles to create drug delivery vehicles, which were designed to protect, deliver and then release chemotherapeutic drugs through an intracellular pH trigger. PolyNIPAAm and chitosan hydrogels, under 200 nm in diameter, were loaded with chemotherapeutic drugs, conjugated to transferrin and tested in vitro on HeLa cells. These projects demonstrate the great potential in this growing field as well as some of the many challenges that have yet to be overcome.
机译:本文描述了观察,技术和策略,它们有助于发展基于纳米颗粒的癌症检测和治疗。研究了量子点和生物识别分子在检测中的应用,并将微凝胶用于靶向药物输送载体的合理设计。在分子生物学中常用的缓冲液中检查了量子点的荧光强度。发现ZnS封端的CdSe量子点(QDs)的荧光强度显着不同,这取决于QD上加盖的ZnS的数量或QD所处的缓冲液的浓度,pH值和类型。由于不能可靠地使用荧光来量化QD,开发了另一种定量方法,该方法不依赖于其荧光。该方法利用噬菌体展示来鉴定纳米颗粒特异性噬菌体,然后将其用于测定中以定量测定在吸光度或荧光光谱无效的环境中的量子点。还可以通过噬菌体展示鉴定出可以将纳米颗粒导向分子靶标的生物识别分子。在全细胞上的噬菌体展示用于鉴定肽,该肽与QD偶联以染色HeLa(宫颈癌)细胞。还开发了高通量噬菌体展示筛选策略,该策略可以实现从单个文库中同时鉴定多个生物识别分子。将QD编码的微珠条形码与蛋白质靶标偶联,然后用于筛选噬菌体展示库。然后使用流式细胞仪和荧光辅助细胞分选术分离珠子和结合噬菌体。最后,将生物识别分子与纳米颗粒结合以创建药物输送载体,该药物输送载体旨在通过细胞内pH触发器保护,输送然后释放化疗药物。在直径200 nm的PolyNIPAAm和壳聚糖水凝胶中装入化疗药物,与转铁蛋白偶联,并在HeLa细胞上进行体外测试。这些项目展示了这个不断发展的领域的巨大潜力以及许多尚待克服的挑战。

著录项

  • 作者

    Mardyani, Sawitri.;

  • 作者单位

    University of Toronto (Canada).;

  • 授予单位 University of Toronto (Canada).;
  • 学科 Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 140 p.
  • 总页数 140
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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