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Optical and surface analysis of DNA microarrays to assess printed spot heterogeneity.

机译:DNA微阵列的光学和表面分析,以评估印刷的斑点异质性。

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摘要

DNA microarrays have been plagued with analytical problems with quantitation, metrics, figures of merit, and reliability and reproducibility issues, hindering their acceptance in clinical and diagnostic settings. The main deficiency in the printed DNA format is the microspot heterogeneity occurring during array fabrication and further amplified during target hybridization.;Work described in this dissertation focuses on assessment of DNA microarray spots generated with conventional pin-type contact printing of fluorescently labeled DNA probes, on industry-standard commercial polymer-coated array slides and their hybridization with complementary oligomer DNA target. Printing of probe DNA microspots shares many features of commonly reported droplet evaporation dynamics that lead to different drying patterns and spot morphologies. This study directly identifies and analyzes different DNA probe chemical and spatial microenvironments within spots, analyzed with high-resolution time-of-flight secondary ion mass spectrometry (TOF-SIMS) chemical imaging, confocal epifluorescence, and probe microscopy force imaging methods. Drying of DNA probe spots shows Marangoni flow effects with high densities of probe DNA-Cy3 located in spot centers and nonhomogeneous DNA distributed radially within printed spots with both TOF-SIMS imaging and epifluorescence microscopy. Target hybridization kinetics and duplex formation were assessed using real-time in situ confocal imaging, and confirmed radial hemispherical diffusion-mediated distribution of target capture from spot edge to its interior. Kinetic modeling indicates pseudo-first order kinetics due to transport limitations and local density-dependent probe interactions with diffusing target. Fluorescence resonance energy transfer (FRET) and photobleaching results show that the high- density probe overcrowding in spots facilitates a broad range of target binding interactions regardless of dye orientations. Moreover, lateral probe density heterogeneity observed with high-resolution imaging techniques confirmed with confocal microscopy produces equally heterogeneous target capture under normal assay conditions, showing how spot drying produces signal variability.;These methods are the first to interrogate single printed array spots providing new support that microspot signal heterogeneity is not purely a result of target hybridization but is initially sourced during immobilization of probes with droplet printing techniques. This will guide new thinking on immobilized density influence on assay performance and how to approach assay endpoints, either kinetically or at equilibrium binding, by modifying spot molecular environments to reliably capture their signal.
机译:DNA微阵列一直困扰着定量,度量,优值,可靠性和再现性等分析问题,阻碍了它们在临床和诊断环境中的接受。印刷DNA格式的主要缺陷是在阵列制造过程中发生微斑点异质性,并在靶标杂交过程中进一步扩增。工业标准的商用聚合物包被的阵列玻片及其与互补寡聚物DNA靶标的杂交。探针DNA微点的打印具有许多共同报道的液滴蒸发动力学特性,这些特性会导致不同的干燥模式和斑点形态。这项研究直接识别和分析斑点内的不同DNA探针化学和空间微环境,并使用高分辨率飞行时间二次离子质谱(TOF-SIMS)化学成像,共聚焦落射荧光和探针显微镜力成像方法进行了分析。 DNA探针斑点的干燥显示了具有高密度探针DNA-Cy3的Marangoni流动效应,探针DNA-Cy3位于斑点中心,并且通过TOF-SIMS成像和落射荧光显微镜观察,非均匀DNA径向分布在打印斑点内。使用实时原位共聚焦成像评估靶标杂交动力学和双链体形成,并确认从靶点边缘到其内部的径向半球扩散介导的靶标捕获分布。动力学建模表明由于运输限制以及与扩散靶的局部密度依赖性探针相互作用而引起的伪一级动力学。荧光共振能量转移(FRET)和光漂白结果表明,斑点中的高密度探针过度拥挤可促进广泛范围的靶标结合相互作用,而与染料方向无关。此外,通过共聚焦显微镜确认的高分辨率成像技术观察到的横向探针密度异质性在正常测定条件下产生了同样异质的目标捕获,显示了斑点干燥如何产生信号变异性。微点信号异质性并非纯粹是靶标杂交的结果,而是最初是在用液滴印刷技术固定探针的过程中产生的。这将指导有关固定密度对测定性能的影响以及如何通过修饰斑点分子环境以可靠地捕获其信号的方式,以动力学或平衡结合方式接近测定终点的新思路。

著录项

  • 作者

    Nagaraja Rao, Archana.;

  • 作者单位

    The University of Utah.;

  • 授予单位 The University of Utah.;
  • 学科 Chemistry Analytical.;Engineering Materials Science.;Health Sciences Pharmacy.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 186 p.
  • 总页数 186
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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