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Novel optical techniques for exploring the DNA binding affinity and specificity of eukaryotic transcription factors and transcription factor complexes.

机译:探索真核转录因子和转录因子复合物的DNA结合亲和力和特异性的新型光学技术。

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摘要

Eukaryotic gene expression is an essential and variegated process that is regulated at multiple levels. The regulation of transcription by DNA binding transcription factors (TFs) is a key level of this process. Our understanding of this regulation has been enabled in large part by the available investigative technologies and techniques in the biochemistry and molecular biology community, including fundamental techniques spanning from in vitro protein:DNA interaction studies to genome sequencing. In efforts to better understand transcriptional regulation, modern extensions and innovations in metholody have been created, such as surface plasmon resonance (SPR), chromatin immunoprecipitation on microarray chip (ChIP-chip) or ChIP coupled to rapid sequencing (ChIP-seq), and protein binding microarrays (PBM). The central importance of multi-protein complexes of TFs in the cell, coupled with the widespread nature of cis-regulatory sequences discovered in the human genome, highlight a great need for technologies and methods able to investigate regulatory DNA-binding protein complexes. This dissertation presents novel optical techniques that are capable of sensitive, high-throughput kinetic and thermodynamic measurements of DNA binding by transcription factor complexes. Total internal reflectance fluorescence protein binding microarrays (TIRFPBM) are a validated and extensible system for multi-protein transcription factor investigation, and rely on the use of evanescent fields in a waveguide-microarray to fluorescently excite transcription factors when bound to DNA targets. Surface-enhanced Raman scattering (SERS) DNA assemblies present a complimentary technique that uses self-assembled, optically active nanoparticle clusters to monitor TF binding in a robust and highly sensitive fashion. Together, these techniques provide a novel and extendible platform for observing and understanding transcription factor complexes during transcriptional regulation, enabling previously difficult-to-approach biochemical investigations.
机译:真核基因表达是一个必需的且多样化的过程,其在多个水平上受到调节。 DNA结合转录因子(TFs)对转录的调节是该过程的关键水平。我们对这种调节的理解很大程度上是由生物化学和分子生物学领域中可用的研究技术所提供的,包括从体外蛋白质:DNA相互作用研究到基因组测序的基础技术。为了更好地理解转录调控,已经建立了现代的巯基延伸和创新方法,例如表面等离振子共振(SPR),微阵列芯片上的染色质免疫沉淀(ChIP-chip)或与快速测序结合的ChIP(ChIP-seq),以及蛋白结合微阵列(PBM)。 TFs的多蛋白复合物在细胞中的重要性,再加上人类基因组中发现的顺式调控序列的广泛性质,凸显了对能够研究调控性DNA结合蛋白复合物的技术和方法的巨大需求。本文提出了新颖的光学技术,能够通过转录因子复合物对DNA结合进行灵敏的,高通量的动力学和热力学测量。全内反射荧光蛋白结合微阵列(TIRFPBM)是用于多蛋白转录因子研究的经过验证且可扩展的系统,当结合到DNA靶标时,依靠在波导微阵列中使用e逝场来荧光激发转录因子。表面增强拉曼散射(SERS)DNA组件提供了一种互补技术,该技术使用自组装的光学活性纳米粒子簇以健壮且高度敏感的方式监测TF结合。总之,这些技术提供了一个新颖且可扩展的平台,用于在转录调控过程中观察和理解转录因子复合物,从而使以前难以进行的生化研究成为可能。

著录项

  • 作者

    Bonham, Andrew James.;

  • 作者单位

    University of California, Santa Barbara.;

  • 授予单位 University of California, Santa Barbara.;
  • 学科 Biology Molecular.;Chemistry Biochemistry.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 165 p.
  • 总页数 165
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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