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Structural and Biochemical Investigation of Gram-Positive Bacterial Surface Display Machinery

机译:革兰氏阳性细菌表面展示机械的结构和生化研究

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摘要

Many species of pathogenic Gram-positive bacteria have become resistant to commonly used antibiotics, creating a pressing need for the development of novel antimicrobial therapies. These pathogenic bacteria are surrounded by a complex peptidoglycan cell wall that is decorated with a range of macromolecules such as surface proteins, protein-based oligomeric pili, and surface glycopolymers. These structures enable the microbe to effectively interact with their environment, and in pathogenetic bacteria are frequently virulence factors that are involved in: immune system modulation, bacterial adhesion, nutrient acquisition, and spore formation. Two distinct enzyme superfamilies are primarily responsible for covalently attaching macromolecules to the Gram-positive cell wall: sortase enzymes that attach proteins and assemble pili, and LytR-Psr-CpsA (LCP) enzymes that attach glycopolymers. This dissertation presents my efforts to discover a sortase inhibitor, structural and mechanistic investigations of both sortase and LCP enzymes, and the development of a new sortase mediated ligation technology. I describe our efforts to find inhibitors against the S. aureus sortase transpeptidase. We utilized both experimental and computational methods to discover potent inhibitor scaffolds. This led to structure-activity studies that not only improved inhibitor potency, but also yielded molecules that can inhibit bacterial protein display in vivo, and appear to be non-toxic to human cells. Sortase enzymes have also proven to be valuable biotechnological conjugation tools. I describe the development of a novel sortase-mediated ligation tool. We demonstrate a 15-fold rate enhancement for existing sortase mediated ligation strategies. Additionally, I discuss studies on sortase pilus assembly and display. To gain insight into the molecular mechanism of sortase pilus assembly, we reconstituted an archetypal Gram-positive pilus assembly process in vitro. This has allowed us to generate molecular models of various intermediates of pilus assembly and define the molecular determinants of this assembly process. We have identified novel features on both the sortase and pilin precursor proteins that are essential for pilus covalent isopeptide assembly. In the concluding chapter of this dissertation, structural work characterizing the unique LCP enzyme that mediates surface protein glycosylation is presented. Work on this project reveals that LCP enzymes use a conserved phosphotransferase mechanism to attach glycopolymers to surface displayed proteins, and this may be a mechanism for actinobacteria wall teichoic acid display, a key macromolecule in the bacterial cell envelope. Combined, this work serves to further define the mechanism of Gram-positive bacterial macromolecular surface display, improved sortase-mediated bioconjugation strategies, and steps towards novel anti-infective sortase inhibitors.
机译:多种致病性革兰氏阳性细菌已对常用抗生素产生抗药性,迫切需要开发新型抗菌疗法。这些致病细菌被复杂的肽聚糖细胞壁所包围,该细胞壁上装饰着一系列大分子,例如表面蛋白,基于蛋白质的寡聚菌毛和表面糖聚合物。这些结构使微生物能够有效地与其环境相互作用,并且在致病细菌中,细菌常常是涉及以下毒性因子:免疫系统调节,细菌粘附,营养物获取和孢子形成。两种截然不同的酶超家族主要负责将大分子共价附着于革兰氏阳性细胞壁:附着蛋白并组装菌毛的分选酶和附着糖聚合物的LytR-Psr-CpsA(LCP)酶。本论文为我寻找分选酶抑制剂,分选酶和LCP酶的结构和机理研究以及新的分选酶介导的连接技术的发展提供了我的努力。我描述了我们寻找抗金黄色葡萄球菌分选酶转肽酶抑制剂的努力。我们利用实验和计算方法来发现有效的抑制剂支架。这导致了结构活性研究,该研究不仅提高了抑制剂的效力,而且还产生了可以抑制体内细菌蛋白质展示并且对人细胞无毒的分子。分选酶也已被证明是有价值的生物技术结合工具。我描述了新型分选酶介导的连接工具的开发。我们证明了现有分选酶介导的连接策略的15倍速率增强。此外,我讨论了有关分类酶菌毛组装和展示的研究。为了深入了解分选酶菌毛组装的分子机制,我们在体外重构了原型革兰氏阳性菌毛组装过程。这使我们能够生成菌毛组装的各种中间体的分子模型,并定义该组装过程的分子决定因素。我们已经确定了分选酶和菌毛蛋白前体蛋白的新颖特征,这些特征对于菌毛共价异肽组装至关重要。在本论文的最后一章中,介绍了表征独特的LCP酶介导表面蛋白糖基化的结构工作。该项目的工作表明,LCP酶利用保守的磷酸转移酶机制将糖多聚体附着到表面展示的蛋白质上,这可能是放线菌壁次氯酸展示的机制,这是细菌细胞膜中的关键大分子。结合起来,这项工作有助于进一步确定革兰氏阳性细菌大分子表面展示的机制,改进的分选酶介导的生物结合策略,以及迈向新型抗感染分选酶抑制剂的步骤。

著录项

  • 作者

    Amer, Brendan Rayhan.;

  • 作者单位

    University of California, Los Angeles.;

  • 授予单位 University of California, Los Angeles.;
  • 学科 Biochemistry.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 164 p.
  • 总页数 164
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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