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The importance of amino acid diversity and conformational diversity in constructing protein-protein interfaces.

机译:氨基酸多样性和构象多样性在构建蛋白质-蛋白质界面中的重要性。

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摘要

The ability to engineer novel binding proteins is important in molecular biology, biotechnology and medicine. Proteins engineered to interact with other molecules with high affinity and specificity are used for a wide range of applications including the labeling and detection, purification, and functional perturbation of target molecules. Because of these and other important practical applications, there is a strong need to develop systems for engineering novel binding proteins quickly and effectively. To date, antibodies have been the most widely used class of binding proteins for most applications. However, non-antibody platforms for engineering novel binding proteins have emerged as attractive alternatives in the past 10-15 years. Our laboratory has pioneered the use of one such alternative scaffold, the fibronectin type III domain (FN3). We call the novel binding proteins produced based on this scaffold, "monobodies". Since the establishment of the monobody system 12 years ago, it has emerged as one of the most successful and widely used alternative scaffold systems. High-affinity monobodies have been successfully generated to a wide array of target molecules and have been used in a variety of practical applications. However, despite this success, no detailed structural or mechanistic information has been obtained for how monobodies achieve these activities. As a result, critical evaluation of current monobody engineering strategies and the development of new strategies has remained a difficult task and our understanding of molecular recognition in the monobody system has remained very limited. In this dissertation, I seek to gain detailed structural and mechanistic characterization of monobodies in order to improve our engineering abilities and advance our understanding of molecular recognition in this important system. I have used this approach to investigate the roles of amino acid diversity and conformational diversity in the construction monobody-target interactions. The findings here have led to improved strategies for engineering novel binding proteins using the monobody system and carry implications for engineering strategies in other systems as well. Additionally, these findings help to illuminate the roles that amino acid diversity and conformational diversity play in protein-protein interactions more generally. Overall, the work here demonstrates the power of detailed structural and mechanistic characterization of engineered binding proteins in advancing our ability to engineer novel binding proteins and furthering our understanding of the factors governing molecular recognition.
机译:工程化新型结合蛋白的能力在分子生物学,生物技术和医学中很重要。经过工程改造,可以与其他分子以高亲和力和特异性相互作用的蛋白质被广泛用于各种应用,包括目标分子的标记和检测,纯化和功能扰动。由于这些以及其他重要的实际应用,迫切需要开发用于快速有效地工程化新型结合蛋白的系统。迄今为止,抗体已成为大多数应用中使用最广泛的结合蛋白。然而,在过去的10-15年中,用于工程化新型结合蛋白的非抗体平台已经成为有吸引力的替代品。我们的实验室率先使用了一种这样的替代支架,即纤连蛋白III型结构域(FN3)。我们将基于这种支架产生的新型结合蛋白称为“抗体”。自12年前建立单体系统以来,它已成为最成功且使用最广泛的替代支架系统之一。高亲和力单克隆抗体已成功地产生到多种靶分子,并已用于多种实际应用中。然而,尽管取得了成功,但仍未获得有关单体如何实现这些活动的详细结构或机制信息。结果,对当前单体工程策略的严格评估和新策略的开发仍然是一项艰巨的任务,而我们对单体系统中分子识别的理解仍然非常有限。在本文中,我试图获得对单体的详细结构和力学表征,以提高我们的工程能力并增进我们对该重要系统中分子识别的理解。我已经使用这种方法来研究氨基酸多样性和构象多样性在构建单体-靶标相互作用中的作用。此处的发现导致改进了使用单体系统工程化新型结合蛋白的策略,并且也对其他系统的工程化策略产生了影响。此外,这些发现有助于更普遍地阐明氨基酸多样性和构象多样性在蛋白质-蛋白质相互作用中的作用。总的来说,这里的工作证明了工程结合蛋白的详细结构和机理表征在提高我们工程化新型结合蛋白的能力以及加深我们对控制分子识别的因素的理解方面的力量。

著录项

  • 作者

    Gilbreth, Ryan.;

  • 作者单位

    The University of Chicago.;

  • 授予单位 The University of Chicago.;
  • 学科 Chemistry Biochemistry.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 180 p.
  • 总页数 180
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 宗教;
  • 关键词

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