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Single molecule and single nanoparticle spectroscopic studies using Forster resonance energy transfer and nanometal surface energy transfer in biological applications.

机译:在生物应用中使用Forster共振能量转移和纳米金属表面能转移的单分子和单纳米粒子光谱研究。

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Nanobiotechnology is a young and exciting field. There has been an explosion of growth in this area within the past ten years. The availability of new strategies for synthesizing nanomaterials is partially responsible. New materials used in this field constitute a link between single molecules and bulk systems. The purpose of this dissertation is to examine novel materials and cutting edge technologies employed in spectroscopic studies for biological applications. The dynamic optical and electronic properties of metals and semiconductor materials are explored in terms of biosensors. Single molecule studies employing Forster Resonance Energy Transfer (FRET) and Nanometal Surface Energy Transfer (NSET) are evaluated using total internal reflection fluorescence microscopy. Chapter 1 of this thesis gives a brief introduction to theories and concepts that are used in experimental chapters (3, 4, and 5). It is intended to provide a basic understanding of materials used in current nanotechnology. Chapter 2 describes detailed information in regard to sample preparations and instrumentation used in our single molecule studies. In Chapter 3 steady state fluorescence experiments explore the fluorescent and optical properties of dye-labeled DNA constructs in the presence of gold nanoparticles, also dynamic and static fluorescence quenching processes are examined. Chapter 4 describes a molecular beacon that is designed using two novel hybrid nanobiomaterials; quantum dots and gold nanoparticles. This "smart" biosensor incorporates a disulfide cleavage site allowing for "on and off" states to be monitored at the single molecule level. And finally, a combined FRET and reverse transcription PCR approach is used for in vitro monitoring of pre-mRNA splicing at the single molecule level is discussed in Chapter 5 of this thesis.
机译:纳米生物技术是一个年轻而令人兴奋的领域。在过去的十年中,该领域的增长呈爆炸式增长。合成纳米材料的新策略的可用性部分负责。该领域中使用的新材料构成了单分子与本体系统之间的联系。本文的目的是研究用于生物应用的光谱学研究中使用的新型材料和前沿技术。金属和半导体材料的动态光学和电子特性是根据生物传感器进行研究的。使用全内反射荧光显微镜评估采用Forster共振能量转移(FRET)和纳米金属表面能量转移(NSET)的单分子研究。本文的第一章简要介绍了实验章节(第3、4和5章)中使用的理论和概念。旨在提供对当前纳米技术中使用的材料的基本了解。第2章介绍了有关单分子研究中使用的样品制备和仪器的详细信息。在第3章中,稳态荧光实验探讨了在金纳米颗粒存在下染料标记的DNA构建体的荧光和光学性质,还研究了动态和静态荧光猝灭过程。第4章介绍了使用两种新型的杂化纳米生物材料设计的分子信标。量子点和金纳米粒子。这种“智能”生物传感器具有二硫键切割位点,可在单个分子水平上监测“开和关”状态。最后,结合FRET和逆转录PCR方法在单分子水平上对pre-mRNA剪接进行体外监测将在本论文的第5章中讨论。

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