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Capillary isoelectric focusing-based multidimensional peptide/protein separations for proteomics analysis.

机译:基于毛细管等电聚焦的多维肽/蛋白质分离,用于蛋白质组学分析。

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摘要

With the completion of the human genome project, the proteomics has become the focus of research interest for better understanding the complex biological processes. The mass spectrometry (MS) detection of vast number and broad dynamic range of the proteins requires that sample fractionation and separation be performed prior to MS analysis. Realizing the limitations of gel-based proteomic techniques, capillary-based and gel free separation technologies are presented as attractive alternatives holding the promises of high separation efficiency and resolution, broad dynamic range, easy system automation as well as high throughput.; Coupled with laser free microdissection technology, the combination of CIEF with nano-RPLC in an automated and integrated platform was employed for comprehensive and sensitive proteome studies of limited protein quantities obtained from tissue samples. The peptides were first separated and concentrated by CIEF and were sequentially fractionated. All the CIEF fractions were further resolved by nano-RPLC, followed by tandem MS analysis. A total of 6,866 fully tryptic peptides were detected, leading to the identification of 1,820 distinct proteins.; Due to limited peptide sequence coverage of identified proteins, the bottom-up approaches provide very limited molecular information about the intact proteins, particularly towards the detection of post-translational modifications. In contrast, top-down methods are advantageous for the detection of protein modifications. To improve separation efficiency and resolution of nano-RPLC separations for intact proteins, various chromatography conditions, including the chain length of the stationary phase, the column temperature, and the ion-pairing agent utilized in the mobile phase, were optimized using model proteins.; Building upon the experience in the development of automated and integrated multidimensional peptide separation platform and the optimization of protein chromatography separation, a top-down proteome characterization of yeast cell lysates was further evaluated. An overall system capacity of 4,320--7,200 was achieved and a total of 534 distinct yeast protein masses were measured, yet required a protein loading of only 9.6 mug. This protein loading is two to three orders of magnitude less than those used in current top-down proteome techniques, illustrating the potential usage of this proteome technology for the analysis of protein profiles within small cell populations or limited tissue samples.
机译:随着人类基因组计划的完成,蛋白质组学已成为研究兴趣的焦点,以更好地了解复杂的生物过程。质谱(MS)检测大量且广泛的蛋白质动态范围要求在进行MS分析之前先进行样品分离和分离。认识到基于凝胶的蛋白质组学技术的局限性,提出了基于毛细管和无凝胶的分离技术,这些技术具有高分离效率和分离度,宽动态范围,易于系统自动化以及高通量的前景。结合无激光显微解剖技术,将CIEF与nano-RPLC在自动和集成平台中的组合用于从组织样本中获得的有限蛋白质量的全面而敏感的蛋白质组学研究。首先将肽分离并通过CIEF浓缩,然后顺序分馏。所有CIEF馏分均通过nano-RPLC进一步分离,然后进行串联MS分析。总共检测到6,866个完全胰蛋白酶肽,从而鉴定出1,820个不同的蛋白质。由于已鉴定蛋白质的肽序列覆盖范围有限,因此自下而上的方法只能提供有关完整蛋白质的非常有限的分子信息,尤其是在检测翻译后修饰方面。相反,自上而下的方法对于检测蛋白质修饰是有利的。为了提高完整蛋白的分离效率和纳米RPLC分离的分离度,使用模型蛋白优化了各种色谱条件,包括固定相的链长,柱温和流动相中使用的离子对试剂。 ;基于开发自动化和集成的多维肽分离平台和优化蛋白质色谱分离的经验,进一步评估了酵母细胞裂解液的自上而下的蛋白质组表征。达到了4,320--7,200的总系统容量,共测量了534个不同的酵母蛋白质质量,但蛋白质负载量仅为9.6马克杯。该蛋白质负载量比当前的自上而下的蛋白质组技术所使用的蛋白质负载量少两到三个数量级,这说明了该蛋白质组技术在分析小细胞群体或有限的组织样本中的蛋白质谱方面的潜在用途。

著录项

  • 作者

    Wang, Yueju.;

  • 作者单位

    University of Maryland, College Park.;

  • 授予单位 University of Maryland, College Park.;
  • 学科 Chemistry Analytical.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 153 p.
  • 总页数 153
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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