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Engineering of polyketide biosynthetic pathways for bioactive molecules.

机译:生物活性分子的聚酮化合物生物合成途径的工程设计。

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摘要

Polyketides are a large group of structurally diverse natural products that have shown a variety of biological activities. These molecules are synthesized by polyketide synthases (PKSs). PKSs are classified into three types based on their sequence, primary structure, and catalytic mechanism. Because of the bioactivities of polyketide natural products, this study is focused on the engineering of PKS pathways for efficient production of useful bioactive molecules or structural modification to create new molecules for drug development.;One goal of this research is to create an efficient method to produce pharmaceutically important molecules. Seven biosynthetic genes from plants and bacteria were used to establish a variety of complete biosynthetic pathways in Escherichia coli to make valuable plant natural products, including four phenylpropanoid acids, three bioactive natural stilbenoids, and three natural curcuminoids. A curcumin analog dicafferolmethane was synthesized by removing a methyltransferase from the curcumin biosynthetic pathway. Furthermore, introduction of a fungal flavin-dependent halogenase into the resveratrol biosynthetic pathway yielded a novel chlorinated molecule 2-chloro-resveratrol. This demonstrated that biosynthetic enzymes from different sources can be recombined like legos to make various plant natural products, which is more efficient (2-3 days) than traditional extraction from plants (months to years). Phenylalanine ammonia-lyase (PAL) is a key enzyme involved in the first biosynthetic step of some plant phenylpropanoids. Based on the biosynthetic pathway of curcuminoids, a novel and efficient visible reporter assay was established for screening of phenylalanine ammonia-lyase (PAL) efficiency in Escherichia coli..;The other goal of this research is to characterize and engineer natural product biosynthetic pathways for new bioactive molecules. The biosynthetic gene cluster of the antibacterial compound dutomycin was discovered from Streptomyces minoensis NRRL B-5482 through genome sequencing. Confirmation of the involvement of this gene cluster in dutomycin biosynthesis and creation of a series of new molecules were successfully conducted by rationally modifying the biosynthetic pathway. More importantly, a new demethylated analog of dutomycin was found to have much higher antibacterial activity against Staphylococcus aureus and methicillin-resistant Staphylococcus aureus..
机译:聚酮化合物是一大类结构多样的天然产物,具有多种生物活性。这些分子由聚酮化合物合酶(PKSs)合成。根据其序列,一级结构和催化机理,PKS分为三种类型。由于聚酮化合物天然产物具有生物活性,因此本研究专注于有效生产有用生物活性分子或进行结构修饰以创建用于药物开发的新分子的PKS途径工程。该研究的一个目标是创建一种有效的方法来产生药学上重要的分子。来自植物和细菌的七个生物合成基因被用来在大肠杆菌中建立各种完整的生物合成途径,以制造有价值的植物天然产物,包括四种苯基丙酸,三种生物活性天然类胡萝卜素和三种天然姜黄素。通过从姜黄素生物合成途径中去除甲基转移酶来合成姜黄素类似物二咖啡酚甲烷。此外,将真菌黄素依赖性卤化酶引入白藜芦醇的生物合成途径产生了新型的氯化分子2-氯-白藜芦醇。这表明来自不同来源的生物合成酶可以像乐高积木一样重组,制成各种植物天然产物,比传统的植物提取(数月至数年)效率更高(2-3天)。苯丙氨酸氨裂合酶(PAL)是一些植物苯基丙烷的第一步生物合成步骤中涉及的关键酶。基于姜黄素的生物合成途径,建立了一种新颖有效的可见报告基因检测方法,用于筛选大肠杆菌中苯丙氨酸解氨酶(PAL)的效率。该研究的另一个目标是表征和工程化天然产物的生物合成途径。新的生物活性分子。通过基因组测序,从氨基链霉菌NRRL B-5482中发现了抗菌化合物妥乐霉素的生物合成基因簇。通过合理地修饰生物合成途径,成功进行了该基因簇参与度霉素的生物合成的确认和一系列新分子的创建。更重要的是,发现一种新的去甲基霉素的去甲基化类似物对金黄色葡萄球菌和耐甲氧西林的金黄色葡萄球菌具有更高的抗菌活性。

著录项

  • 作者

    Wang, Siyuan.;

  • 作者单位

    Utah State University.;

  • 授予单位 Utah State University.;
  • 学科 Biomedical engineering.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 174 p.
  • 总页数 174
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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