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Molecular barcoded plasmid yeast ORF library: Linking bioactive compounds to their cellular targets and mapping dosage suppressor networks.

机译:分子条形码质粒酵母ORF文库:将生物活性化合物链接到其细胞靶标并绘制剂量抑制器网络的图谱。

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摘要

In this thesis I describe a functional genomics resource in which each yeast gene, with its native promoter and 3â??UTR, is cloned on a uniquely barcoded low-copy vector. We refer to this resource as the Molecular Barcoded Yeast ORF (MoBY-ORF) library 1.0. Each gene carried by MoBY-ORF 1.0 should mimic its native expression and thus is best suited for complementation cloning. The vector backbone of MoBY-ORF 1.0 is compatible with the mating-assisted genetically integrated cloning (MAGIC) system for recombination cloning in bacterial cells, which allows the transfer of the ORF fragment and its barcoded cassette to other vector backbones. Taking advantage of the MAGIC system, we created a multi-copy version of the library, which we refer to as MoBY-ORF 2.0.;I used MoBY-ORF 1.0 to map drug resistant mutants by complementation cloning with a barcode microarray readout. I investigated several drugs with known targets in my proof-of-principle experiments and showed the feasibility of this method. I identified a single mutation that causes resistance to two different natural products, theopalauamide and stichloroside. By doing so, I was able to link these two chemicals to their cellular target, ergosterol. In fact, theopalauamide represents a new class of sterol binding chemical.;I also describe the use of MoBY-ORF 2.0 to clone dosage suppressors of conditional temperature-sensitive mutants. By doing so, and combing our own data with published literature, we showed that dosage suppression interactions often overlap with protein-protein interactions and negative genetic interactions but not positive interactions; however the majority of dosage suppression interactions are unique and thus they represent an unique edge on a global functional interaction map. We also describe the first genome-wide dosage suppressor interaction map of budding yeast.
机译:在这篇论文中,我描述了一种功能基因组学资源,其中每个酵母基因及其天然启动子和3âUTR被克隆在唯一的条形码低拷贝载体上。我们将此资源称为分子条形码酵母ORF(MoBY-ORF)库1.0。 MoBY-ORF 1.0携带的每个基因都应模仿其天然表达,因此最适合互补克隆。 MoBY-ORF 1.0的载体骨架与交配辅助遗传整合克隆(MAGIC)系统兼容,可在细菌细胞中进行重组克隆,从而可将ORF片段及其带条形码的盒转移到其他载体骨架上。利用MAGIC系统,我们创建了该库的多副本版本,我们将其称为MoBY-ORF 2.0。我使用MoBY-ORF 1.0通过条码微阵列读数的互补克隆来绘制耐药突变体。我在原理证明实验中研究了几种具有已知靶标的药物,并证明了该方法的可行性。我确定了一个单一突变,该突变导致对两种不同的天然产物,theopalauamide和stichloroside产生抗性。通过这样做,我能够将这两种化学物质与它们的细胞靶麦角固醇联系起来。实际上,Theopalauamide代表了一类新的固醇结合化学物质。我还描述了MoBY-ORF 2.0克隆条件温度敏感突变体剂量抑制子的用途。通过这样做,并将我们自己的数据与已发表的文献相结合,我们发现剂量抑制相互作用经常与蛋白-蛋白相互作用和阴性遗传相互作用重叠,但不与阳性相互作用重叠。然而,大多数剂量抑制相互作用是独特的,因此它们代表了全局功能相互作用图上的独特优势。我们还描述了萌芽酵母的第一个全基因组剂量抑制剂相互作用图。

著录项

  • 作者

    Ho, Cheuk Hei.;

  • 作者单位

    University of Toronto (Canada).;

  • 授予单位 University of Toronto (Canada).;
  • 学科 Biology Molecular.;Biology Cell.;Biology Microbiology.;Biology Genetics.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 157 p.
  • 总页数 157
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:45:24

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