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Azide-bearing amino acids in protein engineering and proteomic profiling.

机译:蛋白质工程和蛋白质组分析中含叠氮基的氨基酸。

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摘要

The utility of non-canonical amino acids in protein engineering has grown substantially over the past decade. Proteins containing these unnatural building blocks often have radically different biochemical or spectral characteristics than their wild-type counterparts. Furthermore, proteins may be endowed with chemical reactivity not found in the natural proteome upon the introduction of non-canonical amino acids. Successful incorporation of a non-canonical amino acid into recombinant proteins in E. coli is often dependent on engineering of the aminoacyl-tRNA synthetase (aaRS) activity of the cell. The bulk of the work described herein has focused on developing a system to rapidly screen libraries of mutant aaRS to identify clones capable of efficiently incorporating novel reactive non-canonical amino acids. The system is based on the display of reactive amino acid side chains on the surface of E. coli cells upon metabolic incorporation of the amino acid into recombinant outer membrane protein C (OmpC) and the subsequent covalent biotinylation of the reactive side chains. The cells are then stained with fluorescent avidin, thus rendering the cells incorporating the amino acid fluorescent and readily identifiable and sortable by flow cytometry.;The feasibility of such a system was proven by incorporating the methionine surrogate azidohomoalanine (AHA) into OmpC and subsequently biotinylating the reactive azide groups via copper-catalyzed azide-alkyne ligation. Using an improved copper catalyst, low levels of incorporation of translationally inefficient amino acids azidoalanine, azidonorvaline, and azidonorleucine into OmpC were also detected. A saturation mutagenesis library of the methionyl-tRNA synthetase (MetRS) was designed, and cells transformed with this library were screened for the ability to incorporate the long chain amino acid azidonorleucine into recombinant proteins efficiently. Several MetRS mutants were identified with such activity using the cell surface display system. MetRS containing a single amino acid mutation, leucine 13 to glycine (L13G) that occurs in each of the three mutants discovered in the screen, is very efficient at incorporating azidonorleucine into proteins.;In the last part of the work described in this thesis, azidohomoalanine was used to tag newly-synthesized proteins in mammalian cells, thus endowing the newly-synthesized proteins with unique bioorthogonal chemical reactivity. Following covalent biotinylation via the azide-alkyne ligation, these proteins could be selectively enriched for by avidin chromatography and identified using shotgun proteomic approaches. Nearly 200 newly-synthesized proteins were identified unequivocally in just a two-hour window. This technique promises to develop into a highly useful tool for the examination of proteome dynamics.
机译:在过去的十年中,非经典氨基酸在蛋白质工程中的应用已大大增加。包含这些非天然结构单元的蛋白质通常具有与其野生型对应物完全不同的生化或光谱特征。此外,当引入非经典氨基酸时,蛋白质可能具有天然蛋白质组中未发现的化学反应性。将非规范性氨基酸成功整合到大肠杆菌中的重组蛋白中通常取决于细胞氨酰基-tRNA合成酶(aaRS)活性的工程化。本文所述的大部分工作集中于开发一种系统,以快速筛选突变体aaRS的文库,以鉴定能够有效掺入新的反应性非规范氨基酸的克隆。该系统基于在氨基酸代谢合并到重组外膜蛋白C(OmpC)中以及随后的反应性侧链共价生物素化之后,大肠杆菌细胞表面反应性氨基酸侧链的显示。然后将细胞用荧光抗生物素蛋白染色,从而使掺入氨基酸的细胞具有荧光性,并通过流式细胞术易于鉴定和分选。通过将蛋氨酸替代叠氮高丙氨酸(AHA)掺入OmpC并随后进行生物素化,证明了该系统的可行性。通过铜催化的叠氮化物-炔连接反应性叠氮化物基团。使用改进的铜催化剂,还检测到翻译效率低的氨基酸叠氮丙氨酸,叠氮缬氨酸和叠氮亮氨酸掺入OmpC的水平很低。设计了甲硫氨酰-tRNA合成酶(MetRS)的饱和诱变文库,并筛选了用该文库转化的细胞,以了解将长链氨基酸叠氮基亮氨酸有效整合到重组蛋白中的能力。使用细胞表面展示系统鉴定了具有这种活性的几种MetRS突变体。在筛选中发现的三个突变体中的每个突变体中,都含有一个氨基酸突变,即亮氨酸13到甘氨酸(L13G)的MetRS非常有效地将叠氮亮氨酸掺入蛋白质中。在本论文的最后一部分,叠氮高丙氨酸被用来标记哺乳动物细胞中新合成的蛋白质,从而赋予新合成的蛋白质独特的生物正交化学反应性。通过叠氮化物-炔烃连接进行共价生物素化后,可以通过亲和素色谱法选择性富集这些蛋白质,并使用shot弹枪蛋白质组学方法进行鉴定。在短短两个小时的时间内,就明确地鉴定出将近200种新合成的蛋白质。这项技术有望发展成为检验蛋白质组动力学的高度有用的工具。

著录项

  • 作者

    Link, Aaron James.;

  • 作者单位

    California Institute of Technology.;

  • 授予单位 California Institute of Technology.;
  • 学科 Engineering Chemical.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 163 p.
  • 总页数 163
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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