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Engineering highly active enzymes with altered substrate selectivities.

机译:工程化具有改变的底物选择性的高活性酶。

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摘要

Two enzyme model systems were employed to address fundamental questions regarding enzyme engineering via directed evolution. First, it was demonstrated that highly active glutathione transferases (GST) can be isolated from libraries generated by random homology-independent recombination of parental GST genes exhibiting less than 60% DNA sequence identity. The human glutathione transferase theta 1-1 (hGSTT1-1) and rat glutathione transferase theta 2-2 (rGSTT2-2) enzymes exhibit widely divergent amino acid sequences in their C-terminal domains. As a result, the two enzymes possess dramatically different electrophilic substrate selectivities. In particular, the rGSTT2-2 enzyme's ability to conjugate glutathione and the fluorogenic compound 7-amino-4-chloromethyl coumarin (CMAC) was exploited in the design of a flow cytometric screen to distinguish Escherichia coli cells expressing this enzyme from those expressing hGSTT1-1, which cannot effectively conjugate the CMAC substrate. Chimeric libraries of the hGSTT1-1 and rGSTT2-2 enzymes were constructed using a combination of homology-independent and homology-dependent technologies. Clones with high levels of rat-like CMAC activity were isolated by flow cytometry. Several chimeras with improved catalytic parameters were characterized demonstrating, for the first time, that random homology-independent recombination is a useful technique for the generation of novel and highly active biocatalysts. These results also suggested a potential means of reducing the immunogenicity of non-human therapeutic enzymes.; In the second part of this work, the fungal alpha/beta hydrolase cutinase was employed for directed evolution studies of substrate selectivity and activity in esterases. Three complementary expression systems (cytoplasmic, periplasmic, and surface displayed) were constructed for the bacterial host Escherichia coli. Moderate to high-throughput screens and selections for esterolytic activity were designed and evaluated using the active wild-type enzyme and a lower activity variant as controls. An agar plate based pH sensing assay was optimized with the model substrate tributyrin. Additionally, efforts were made to develop a conceptually similar high-throughput pH sensing flow cytometric screen that would potentially be applicable to any ester substrate. The original experimental design was unsuccessful due to rapid diffusion of hydronium ions in bulk solution. Further experiments using microcompartmentalization have been proposed. Finally, a genetic selection for esterase activity was designed, and its feasibility was demonstrated with the positive and negative controls. (Abstract shortened by UMI.)
机译:通过定向进化,采用了两种酶模型系统来解决有关酶工程的基本问题。首先,已证明可以从显示少于60%DNA序列同一性的亲本GST基因的随机不依赖于同源性重组的文库中分离出高活性的谷胱甘肽转移酶(GST)。人谷胱甘肽转移酶theta 1-1(hGSTT1-1)和大鼠谷胱甘肽转移酶theta 2-2(rGSTT2-2)酶在其C末端结构域显示出广泛的氨基酸序列。结果,两种酶具有显着不同的亲电底物选择性。特别是,rGSTT2-2酶具有结合谷胱甘肽和荧光化合物7-氨基-4-氯甲基香豆素(CMAC)的能力,用于流式细胞仪的设计,以区分表达该酶的大肠杆菌细胞与表达hGSTT1的大肠杆菌细胞。 1不能有效地共轭CMAC底物。 hGSTT1-1和rGSTT2-2酶的嵌合文库是使用不依赖同源性和依赖同源性的技术构建的。通过流式细胞术分离具有高水平大鼠样CMAC活性的克隆。几种具有改善的催化参数的嵌合体的特征首次证明了随机非同源性重组是产生新型和高活性生物催化剂的有用技术。这些结果也暗示了降低非人治疗性酶的免疫原性的潜在手段。在这项工作的第二部分中,真菌α/β水解酶角质酶用于酯酶中底物选择性和活性的定向进化研究。为细菌宿主大肠杆菌构建了三个互补表达系统(胞质,周质和表面展示)。使用活性野生型酶和较低活性的变体作为对照,设计和评估中度到高通量的酯水解活性筛选和选择。用模型底物三丁酸甘油酯优化基于琼脂板的pH感测法。另外,努力开发概念上类似的高通量pH传感流式细胞仪筛选,该筛选可能适用于任何酯底物。由于水合氢根离子在散装溶液中的快速扩散,最初的实验设计没有成功。已提出使用微隔室化的进一步实验。最后,设计了酯酶活性的遗传选择,并通过阳性和阴性对照证明了其可行性。 (摘要由UMI缩短。)

著录项

  • 作者

    Griswold, Karl Edwin.;

  • 作者单位

    The University of Texas at Austin.;

  • 授予单位 The University of Texas at Austin.;
  • 学科 Chemistry Organic.; Biology Molecular.; Chemistry Biochemistry.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 240 p.
  • 总页数 240
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 有机化学;分子遗传学;生物化学;
  • 关键词

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