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Antibody discovery and engineering using the anchored periplasmic expression (APEx) Escherichia coli display system with flow cytometric selection.

机译:使用锚定周质表达(APEx)大肠杆菌展示系统进行流式细胞术选择的抗体发现和工程设计。

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摘要

The development of recombinant proteins for therapeutic applications has revolutionized the pharmaceutical industry. In particular, monoclonal antibodies are the safest class of all therapeutic molecules and account for the majority of recombinant proteins currently undergoing clinical trials. A variety of technologies exist to engineer antibodies with a desired binding specificity and affinity, both of which are a prerequisite for therapeutic applications. This dissertation describes the implementation of a novel combinatorial library screening technology for the discovery and engineering of antibodies with unique binding properties. Combinatorial library screening technologies are used for the in vitro isolation of antibodies from large ensembles of proteins (libraries) typically produced by microorganisms using molecular biology techniques. Our lab has developed a powerful antibody discovery technology that relies on E. coli display by anchored periplasmic expression, otherwise known as APEx.;First, I compared the effects of using combinatorial libraries comprising either smaller, monovalent single-chain antibody fragments (scFv), or the much larger, bifunctional full-length IgG antibodies. These technologies were used to isolate a small panel of antigen specific antibodies from the same library of antibody variable domains amplified from a mouse immunized with the Protective Antigen (PA) component from Bacillus anthracis, the causative agent of anthrax. Overall, IgG display resulted in the isolation of a broader panel of variable domain sequences. Most of these variable domains exhibited substantially reduced affinity when expressed as scFvs, which is consistent with the finding that none of these could be isolated from the equivalent scFv library. These results indicate that the antibody format used during in vitro selection affects which antibody variable domains will be discovered.;Second, I developed several modifications of the APEx methodology to allow for more efficient recovery of antibodies with desired properties. Specifically, the system was reengineered to simultaneously account for antibody binding and expression levels in order to isolate the highest affinity antibodies with favorable expression characteristics.;Third, the new approach, coupled with optimized fluorescence activated cell sorting (FACS) settings, was used to increase the affinity of an antibody by 35-fold resulting in a KD of 100 pM. It was demonstrated that genetic transfer of this high affinity antibody specific for the V antigen of Yersinia pestis, the etiologic agent of the plague, conferred increased protection against intranasal challenge with a 363 LD50 of Y. pestis in mice.
机译:用于治疗应用的重组蛋白的开发彻底改变了制药工业。特别地,单克隆抗体是所有治疗分子中最安全的一类,占目前正在临床试验中的大多数重组蛋白。存在多种技术来工程改造具有期望的结合特异性和亲和力的抗体,这两者都是治疗应用的先决条件。本文描述了一种新颖的组合文库筛选技术的实现,该技术用于发现和工程化具有独特结合特性的抗体。组合文库筛选技术用于使用分子生物学技术从通常由微生物产生的大批蛋白质(文库)中体外分离抗体。我们的实验室开发了一种强大的抗体发现技术,该技术依靠锚定周质表达(也称为APEx)依赖大肠杆菌展示;首先,我比较了使用包含较小单价单链抗体片段(scFv)的组合文库的效果,或更大的双功能全长IgG抗体。这些技术用于从同一抗体可变域文库中分离一小组抗原特异性抗体,该文库是从用炭疽芽孢杆菌(炭疽病的致病原)的保护性抗原(PA)成分免疫的小鼠中扩增而来的。总体而言,IgG展示可分离出更多的可变域序列。当表达为scFvs时,这些可变域中的大多数都显示出亲和力大大降低的事实,这与发现不能从等效的scFv库中分离出这些发现相一致。这些结果表明,在体外选择过程中使用的抗体形式会影响将要发现的抗体可变结构域。其次,我对APEx方法进行了多种修改,以更有效地回收具有所需特性的抗体。具体来说,系统经过重新设计以同时考虑抗体的结合和表达水平,从而分离出具有良好表达特性的最高亲和力抗体。第三,新方法与优化的荧光激活细胞分选(FACS)设置一起用于将抗体的亲和力提高35倍,导致KD为100 pM。已经证明,鼠疫病的病原体鼠疫耶尔森氏菌V抗原特异的这种高亲和力抗体的遗传转移赋予小鼠鼠疫耶尔森氏菌363 LD50增强的抵抗鼻内攻击的保护作用。

著录项

  • 作者

    Van Blarcom, Thomas John.;

  • 作者单位

    The University of Texas at Austin.;

  • 授予单位 The University of Texas at Austin.;
  • 学科 Biology Molecular.;Engineering Chemical.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 143 p.
  • 总页数 143
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:37:50

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