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Nanofluidic Pathways for Single Molecule Translocation and Sequencing -- Nanotubes and Nanopores.

机译:单分子易位和测序的纳米流体途径-纳米管和纳米孔。

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摘要

Driven by the curiosity for the secret of life, the effort on sequencing of DNAs and other large biopolymers has never been respited. Advanced from recent sequencing techniques, nanotube and nanopore based sequencing has been attracting much attention. This thesis focuses on the study of first and crucial compartment of the third generation sequencing technique, the capture and translocation of biopolymers, and discuss the advantages and obstacles of two different nanofluidic pathways, nanotubes and nanopores for single molecule capturing and translocation. Carbon nanotubes with its constrained structure, the frictionless inner wall and strong electroosmotic flow, are promising materials for linearly threading DNA and other biopolymers for sequencing. Solid state nanopore on the other hand, is a robust chemical, thermal and mechanical stable nanofluidic device, which has a high capturing rate and, to some extent, good controllable threading ability for DNA and other biomolecules. These two different but similar nanofluidic pathways both provide a good preparation of analyte molecules for the sequencing purpose. In addition, more and more research interests have move onto peptide chains and protein sensing. For proteome is better and more direct indicators for human health, peptide chains and protein sensing have a much wider range of applications on bio-medicine, disease early diagnoses, and etc. A universal peptide chain nanopore sensing technique with universal chemical modification of peptides is discussed in this thesis as well, which unifies the nanopore capturing process for vast varieties of peptides. Obstacles of these nanofluidic pathways are also discussed. In the end of this thesis, a proposal of integration of solid state nanopore and fixed-gap recognition tunneling sequencing technique for a more accurate DNA and peptide readout is discussed, together with some early study work, which gives a new direction for nanopore based sequencing.
机译:在人们对生命秘密的好奇心驱使下,对DNA和其他大型生物聚合物进行测序的努力从未放弃。基于最新测序技术的先进技术,基于纳米管和纳米孔的测序已引起了广泛的关注。本文主要研究第三代测序技术的第一和关键部分,生物聚合物的捕获和转运,并探讨了两种不同的纳米流体途径,即纳米管和纳米孔对于单分子捕获和转运的优势和障碍。碳纳米管具有受约束的结构,无摩擦的内壁和强大的电渗流,是用于线性穿线DNA和其他生物聚合物进行测序的有前途的材料。另一方面,固态纳米孔是一种坚固的化学,热和机械稳定的纳米流体装置,具有很高的捕获率,并且在一定程度上对DNA和其他生物分子具有良好的可控穿线能力。这两种不同但相似的纳米流体通路都为测序目的提供了良好的分析物分子制备方法。另外,越来越多的研究兴趣转移到肽链和蛋白质传感上。对于蛋白质组学来说,是更好的,更直接的人体健康指标,肽链和蛋白质传感在生物医学,疾病早期诊断等方面具有广泛的应用。本文也讨论了这一问题,它统一了多种肽的纳米孔捕获过程。还讨论了这些纳米流体途径的障碍。在本文的最后,讨论了将固态纳米孔与固定间隙识别隧道测序技术相结合以更精确地读取DNA和肽段的建议,并结合一些早期研究工作,为基于纳米孔的测序提供了新的方向。 。

著录项

  • 作者

    Song, Weisi.;

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Condensed matter physics.;Biophysics.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 162 p.
  • 总页数 162
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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