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New Methods for Biological and Environmental Protein Fingerprinting: From Traditional Techniques to New Technology.

机译:生物和环境蛋白质指纹图谱的新方法:从传统技术到新技术。

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摘要

A new challenge on the horizon is to utilize the large amounts of protein found in the atmosphere to identify different organisms from which the protein originated. Included here is work investigating the presence of identifiable patterns of different proteins collected from the air and biological samples for the purposes of remote identification. Protein patterns were generated using high performance liquid chromatography (HPLC). Patterns created could identify high-traffic and low-traffic indoor spaces. Samples were collected from the air using air pumps to draw air through a filter paper trapping particulates, including large amounts of shed protein matter. In complimentary research aerosolized biological samples were collected from various ecosystems throughout Ecuador to explore the relationship between environmental setting and aerosolized protein concentrations.;In order to further enhance protein separation and produce more detailed patterns for the identification of individual organisms of interest; a novel separation device was constructed and characterized. The separation device incorporates a longitudinal gradient as well as insulating dielectrophoretic features within a single channel. This design allows for the production of stronger local field gradients along a global gradient allowing particles to enter, initially transported through the channel by electrophoresis and electroosmosis, and to be isolated according to their characteristic physical properties, including charge, polarizability, deformability, surface charge mobility, dielectric features, and local capacitance. Thus, different types of particles are simultaneously separated at different points along the channel distance given small variations of properties. The device has shown the ability to separate analytes over a large dynamic range of size, from 20 nm to 1 mum, roughly the size of proteins to the size of cells. In the study of different sized sulfate capped polystyrene particles were shown to be selectively captured as well as concentrating particles from 103 to 106 times. Qualitative capture and manipulation of beta-amyloid fibrils were also shown. The results demonstrate the selective focusing ability of the technique; and it may form the foundation for a versatile tool for separating complex mixtures. Combined this work shows promise for future identification of individual organisms from aerosolized protein as well as for applications in biomedical research.
机译:迫在眉睫的新挑战是利用大气中发现的大量蛋白质来鉴定蛋白质起源的不同生物。这里包括的工作是调查为远程识别而从空气和生物样品中收集到的不同蛋白质的可识别模式的存在。使用高效液相色谱(HPLC)产生蛋白质图谱。创建的模式可以识别高流量和低流量的室内空间。使用气泵从空气中收集样品,以通过滤纸吸入空气,从而捕获包括大量脱落的蛋白质物质在内的颗粒。在补充研究中,从厄瓜多尔的各个生态系统中收集了雾化生物样品,以探索环境设置与雾化蛋白质浓度之间的关系。为了进一步增强蛋白质分离并产生更详细的模式,以鉴定感兴趣的单个生物;构造并表征了新颖的分离装置。分离装置在单个通道内结合了纵向梯度以及绝缘介电电泳特征。这种设计允许沿全局梯度产生更强的局部场梯度,从而允许粒子进入,最初通过电泳和电渗通过通道运输,并根据其特征物理性质(包括电荷,极化率,可变形性,表面电荷)进行隔离迁移率,介电特性和局部电容。因此,由于性质的微小变化,沿通道距离的不同点处同时分离了不同类型的颗粒。该设备已显示出能够在20纳米至1微米的大动态范围内分离分析物的能力,动态范围大致是蛋白质的大小到细胞的大小。在研究中,不同尺寸的硫酸盐封端的聚苯乙烯颗粒被选择性捕获,浓缩颗粒的倍数为103至106倍。还显示了β-淀粉样蛋白原纤维的定性捕获和处理。结果证明了该技术的选择性聚焦能力。它可以为分离复杂混合物的多功能工具奠定基础。这项工作的结合显示出有望从雾化蛋白中鉴定出单个生物体,并将其应用于生物医学研究。

著录项

  • 作者

    Staton, Sarah J. R.;

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Chemistry Biochemistry.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 213 p.
  • 总页数 213
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:44:17

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