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An in vitro compartmentalization based method for the selection of bond-forming enzymes from large libraries.

机译:一种基于体外区分开的方法,用于从大型文库中选择形成键的酶。

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摘要

Enzymes have become an integral part of modern bioscience, however, in their natural state, their utility is often limited. Great strides have been made in developing methods to rationally modify proteins through structural and mechanistic data, directed evolution is still the most successful means of engineering proteins with catalytic efficiency approaching those of natural enzymes. However, the application of directed evolution is often limited by the ability to develop a robust, high-throughput means of screening mutagenic libraries for enhanced function.;In chapter 2, we developed a novel in vitro compartmentalization-based bead-display method for the screening of bond-forming enzymes. We have demonstrated that this method is easily adapted for new enzymes, and that it is amenable to screening libraries of up to 1012 variants. To validate our method, in only 5 rounds we enriched a library of 1010 variants of BirA for the ability to ligate desthiobiotin to the biotin acceptor peptide (BAP). In chapter 3 we use our new selection technique to engineer variants of sortase A with enhanced intracellular activity. Sortase A, an enzyme that has been demonstrated to efficiently and specifically tag proteins with small molecule fluorophores on cell surfaces, has been shown to be inactive in the intracellular environment. With a starting library of 1011, we were able to isolate a variant of sortase A that shows a 114-fold increase in catalytic efficiency in the absence of calcium ions and increased resistance to inhibition by cell lysates. We then demonstrate the ability of this variant to perform intramolecular ligations in mammalian cells.;In addition to its potential use as a reagent to label living cells, the small tag size incorporated by sortase labeling is a desirable characteristic for other applications as well. Super-resolution microscopy techniques are being developed and refined rapidly. However, there is still need for methods to tag proteins with small molecules in a manner that is both specific and efficient. In chapter 4 we demonstrate the ability of a sortase A variant to tag proteins in fixed, permeabilized cells and discuss the potential of this technique to be used in conjunction with super-resolution micrsocopy.
机译:酶已成为现代生物科学不可或缺的一部分,但是,在其自然状态下,其实用性常常受到限制。在通过结构和机械数据合理修饰蛋白质的方法开发方面已取得了长足进步,定向进化仍然是工程化蛋白质的最成功手段,其催化效率接近天然酶。然而,定向进化的应用通常受限于开发健壮的,高通量的筛选诱变文库以增强功能的手段的能力。在第二章中,我们开发了一种新颖的基于体外区室化的珠子展示方法。键形成酶的筛选。我们已经证明该方法很容易适应新的酶,并且适合筛选多达1012个变体的文库。为了验证我们的方法,仅5轮,我们就丰富了BirA的1010个变体库,以将脱硫生物素连接至生物素受体肽(BAP)。在第3章中,我们使用新的选择技术来设计具有增强的细胞内活性的分选酶A的变体。已证明分选酶A是一种在细胞表面环境中无活性的酶,该酶已被证明可以用细胞表面的小分子荧光团有效地和特异性地标记蛋白质。使用1011的起始文库,我们能够分离出分选酶A的变体,该变体在不存在钙离子的情况下催化效率提高了114倍,并且对细胞裂解物的抑制作用增强。然后,我们证明了该变体在哺乳动物细胞中进行分子内连接的能力。除了潜在地用作标记活细胞的试剂之外,通过分选酶标记掺入的小标签大小也是其他应用的理想特性。超分辨率显微镜技术正在迅速发展和完善。然而,仍然需要以特异和有效的方式用小分子标记蛋白质的方法。在第4章中,我们演示了sortase A变体在固定的,透化的细胞中标记蛋白质的能力,并讨论了该技术与超分辨率显微检查结合使用的潜力。

著录项

  • 作者

    Gianella, Paul E.;

  • 作者单位

    Yeshiva University.;

  • 授予单位 Yeshiva University.;
  • 学科 Biochemistry.;Biomedical engineering.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 183 p.
  • 总页数 183
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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