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Microfluidic platforms for the characterization of in meso membrane protein crystallization.

机译:微流体平台的介观膜蛋白结晶表征。

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摘要

Membrane proteins, which reside in the membranes of cells, play a critical role in many important biological processes including cellular signaling, immune response, and material and energy transduction. This dissertation presents various aspects of the development of a microfluidic platform to enable high throughput in meso membrane protein crystallization at a level beyond the capabilities of current technologies..;A theoretical treatment of highly viscous fluids in microfluidic devices is presented in Chapter 3, followed by the application of these strategies for the development of a microfluidic mixer capable of preparing a mesophase sample for in meso crystallization at a scale of less than 20 nL in Chapter 4. This approach was validated with the successful on chip in meso crystallization of the membrane protein bacteriorhodopsin. In summary, this is the first report of a microfluidic platform capable of performing in meso crystallization on-chip, representing a 1000x reduction in the scale at which mesophase trials can be prepared..;Once protein crystals have formed, they are typically harvested from the droplet they were grown in and mounted for crystallographic analysis. Despite the high throughput automation present in nearly all other aspects of protein structure determination, the harvesting and mounting of crystals is still largely a manual process. Furthermore, during mounting the fragile protein crystals can potentially be damaged, both from physical and environmental shock. To circumvent these challenges an X-ray transparent microfluidic device architecture was developed to couple the benefits of scale, integration, and precise fluid control with the ability to perform in situ X-ray analysis (Chapter 5).;While the main focus of protein crystallography is to obtain three-dimensional protein structures, the results of typical experiments provide only a static picture of the protein. The use of polychromatic or Laue X-ray diffraction methods enables the collection of time resolved structural information. These experiments are very sensitive to crystal quality, however, and often suffer from severe radiation damage due to the intense polychromatic X-ray beams. Here, as before, the ability to perform in situ X-ray analysis on many small protein crystals within a microfluidic crystallization platform has the potential to overcome these challenges. An automated method for collecting a “single-shot” of data from a large number of crystals was developed in collaboration with the BioCARS team at the Advanced Photon Source at Argonne National Laboratory (Chapter 6). The work described in this thesis shows that, even more so than for traditional structure determination efforts, the ability to grow and analyze a large number of high quality crystals is critical to enable time resolved structural studies of novel proteins. .;In addition to enabling X-ray crystallography experiments, the development of X-ray transparent microfluidic platforms also has tremendous potential to answer other scientific questions, such as unraveling the mechanism of in meso crystallization. For instance, the lipidic mesophases utilized during in meso membrane protein crystallization can be characterized by small angle X-ray diffraction analysis. Coupling in situ analysis with microfluidic platforms capable of preparing these difficult mesophase samples at very small volumes has tremendous potential to enable the high throughput analysis of these systems on a scale that is not reasonably achievable using conventional sample preparation strategies (Chapter 7). In collaboration with the LS-CAT team at the Advanced Photon Source, an experimental station for small angle X-ray analysis coupled with the high quality visualization capabilities needed to target specific microfluidic samples on a highly integrated chip is under development. Characterizing the phase behavior of these mesophase systems and the effects of various additives present in crystallization trials is key for developing an understanding of how in meso crystallization occurs. (Abstract shortened by UMI.).
机译:驻留在细胞膜中的膜蛋白在许多重要的生物学过程中起着关键作用,这些过程包括细胞信号传导,免疫应答以及物质和能量的传导。本文介绍了微流控平台开发的各个方面,以实现中膜膜蛋白结晶的高通量,其水平超出了当前技术的能力。.第3章介绍了微流控设备中高粘度流体的理论处理,其后是通过应用这些策略开发微流体混合器,该混合器能够在第4章中以小于20 nL的规模制备用于中间结晶的中间相样品。这种方法在膜的中间结晶成功的芯片上得到了验证。蛋白细菌视紫红质。总而言之,这是能够在芯片上进行中晶结晶的微流体平台的首次报道,这表示可以制备中相试验的规模减少了1000倍。.;一旦形成蛋白质晶体,通常就可以从中收获它们生长的液滴并进行结晶学分析。尽管几乎在蛋白质结构测定的所有其他方面都具有高通量自动化,但是晶体的收获和固定仍主要是手动过程。此外,在安装过程中,易碎的蛋白质晶体可能会受到物理和环境冲击而损坏。为了克服这些挑战,开发了X射线透明微流控设备体系结构,以结合规模,集成和精确流体控制的好处以及执行原位X射线分析的能力(第5章)。晶体学是获得三维蛋白质结构,典型实验的结果仅提供蛋白质的静态图片。使用多色或劳厄X射线衍射方法可以收集时间分辨的结构信息。但是,这些实验对晶体质量非常敏感,并且由于强烈的多色X射线束而经常遭受严重的辐射损害。在这里,像以前一样,在微流体结晶平台内对许多小蛋白质晶体进行原位X射线分析的能力具有克服这些挑战的潜力。与Argonne国家实验室高级光子源的BioCARS团队合作开发了一种自动方法,用于从大量晶体中收集“单次”数据(第6章)。本论文中描述的工作表明,与传统的结构确定方法相比,增长和分析大量高质量晶体的能力对于实现新型蛋白质的时间分辨结构研究至关重要。除了能够进行X射线晶体学实验外,X射线透明微流体平台的开发还具有巨大的潜力来回答其他科学问题,例如阐明介观结晶的机理。例如,可以通过小角度X射线衍射分析来表征在中间膜蛋白质结晶过程中使用的脂质中间相。原位分析与能够以非常小的体积制备这些困难的中间相样品的微流体平台相结合,具有巨大的潜力,可以对这些系统进行高通量分析,而这是使用常规样品制备策略无法合理实现的(第7章)。与Advanced Photon Source的LS-CAT团队合作,正在开发用于小角度X射线分析的实验台,以及针对高度集成的芯片上的特定微流体样品所需的高质量可视化功能。表征这些中间相系统的相行为以及结晶试验中存在的各种添加剂的作用,是发展对中间相结晶如何发生的理解的关键。 (摘要由UMI缩短。)。

著录项

  • 作者

    Perry, Sarah Louise.;

  • 作者单位

    University of Illinois at Urbana-Champaign.;

  • 授予单位 University of Illinois at Urbana-Champaign.;
  • 学科 Chemistry Analytical.;Chemistry Biochemistry.;Engineering Chemical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 201 p.
  • 总页数 201
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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