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New methods for the study of O-linked protein glycosylation.

机译:研究O-连接蛋白糖基化的新方法。

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摘要

The eukaryotic cell surface is littered with receptors, binding epitopes, and recognition motifs that mediate the cell's interactions with its environment. The carbohydrate chains that adorn membrane proteins represent key players in this information transfer. Despite compelling examples of their physiological importance, protein-bound glycans remain elusive molecules. The heterogeneity that characterizes glycoprotein biosynthesis compromises our ability to formulate strict structure-function correlations for glycans. This dissertation describes two projects designed to curtail glycoprotein heterogeneity to facilitate glycan studies.; The complete chemical synthesis of the insect antibacterial glycoprotein, diptericin, provides the homogeneous sample necessary to analyze glycosylation's functional impact and to investigate the glycoprotein's antibacterial mechanism. Diptericin, an 82 amino acid glycopeptide, contains regions similar to two different types of antibacterial peptides. A revised, highly practical synthesis of the precursor Nα-Fmoc-Thr(Ac3-α-D-GalNAc) allowed us to produce sufficient quantities of the glycoprotein for mechanistic assays. The synthetic, full-length polypeptide proved active in growth inhibition assays at concentrations similar to those found in insect hemolymph. Biological analysis of diptericin fragments indicated that the main determinant of antibacterial activity lay in the C-terminal, “attacin-like” region. Activity appeared glycosylation independent. Preliminary structural and mechanistic studies were performed, suggesting possible mechanisms of action.; Secondly, we developed a strategy to inhibit O-linked glycosylation in cultured cells. A uridine-based library, the cornerstone of our approach, targeted glycosylating enzymes such as the UDP-GlcNAc 4-epimerase. This key enzyme catalyzes the conversion of the common carbohydrate donor, UDP-GlcNAc, to the O-linked precursor, UDP-GalN Ac; its inhibition should arrest O-linked glycosylation in cultured cells. Our synthetic strategy exploited a crucial chemoselective coupling between uridine derivatives functionalized at their 5 positions by an aminooxy or hydrazide group and a diverse array of aldehydes, yielding the corresponding oxime- or hydrazone-based libraries. The 1338-member library we generated produced a substrate-competitive 4-epimerase inhibitor with a Ki of 11 μM. The compound failed to inhibit enzymes operating on similar substrates—UDP-Glc dehydrogenase, the bacterial UDP-Glc 4-epimerase, and the UDP-GlcNAc/GalNAc pyrophosphorylase—suggesting suitably specific inhibition for use in cultured cells. Further application of the uridine library to the inhibition of the UDP-galactopyranose mutase of Mycobacterium tuberculosis is discussed briefly.
机译:真核细胞表面散落着受体,结合表位和介导细胞与其环境相互作用的识别基序。装饰膜蛋白的碳水化合物链是这种信息传递的关键参与者。尽管有令人信服的生理学意义的例子,但结合蛋白质的聚糖仍然是难以捉摸的分子。表征糖蛋白生物合成的异质性损害了我们为聚糖制定严格的结构-功能相关性的能力。本文描述了两个旨在减少糖蛋白异质性以促进聚糖研究的项目。昆虫抗菌糖蛋白二蝶呤的完整化学合成为分析糖基化的功能影响和研究糖蛋白的抗菌机理提供了必需的均质样品。 Diptericin是一种82个氨基酸的糖肽,包含与两种不同类型的抗菌肽相似的区域。经过修订的高度实用的前体N α -Fmoc-Thr(Ac 3 -α-D-GalNAc)合成方法使我们能够生产足够量的糖蛋白用于机械化分析。合成的全长多肽在生长抑制测定中的活性与昆虫血淋巴中发现的浓度相似。二蝶呤片段的生物学分析表明,抗菌活性的主要决定因素位于C端“类连接蛋白”区域。活性表现为不依赖糖基化。进行了初步的结构和机理研究,表明可能的作用机理。其次,我们制定了一种抑制培养细胞中 O 联糖基化的策略。基于尿苷的文库是我们方法的基础,它靶向糖基化酶,例如UDP-GlcNAc 4-表异构酶。该关键酶催化普通碳水化合物供体UDP-GlcNAc转化为 O 连接的前体UDP-GalNAc。其抑制作用应阻止培养细胞中 O 连接的糖基化。我们的合成策略利用了在氨氧基或酰肼基团在其5 <'> 位置官能化的尿苷衍生物与各种醛之间的关键化学选择性偶联,产生了相应的基于肟或的文库。我们生成的具有1338个成员的文库产生了具有底物竞争性的4-表异构酶抑制剂,其K i 为11μM。该化合物无法抑制在类似底物上起作用的酶-UDP-Glc脱氢酶,细菌UDP-Glc 4-表异构酶和UDP-GlcNAc / GalNAc焦磷酸化酶-建议适当地抑制在培养细胞中使用。简要讨论了尿苷文库在抑制结核分枝杆菌的UDP-吡喃半乳糖突变酶中的进一步应用。

著录项

  • 作者

    Winans, Katharine A.;

  • 作者单位

    University of California, Berkeley.;

  • 授予单位 University of California, Berkeley.;
  • 学科 Chemistry Organic.; Chemistry Biochemistry.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 194 p.
  • 总页数 194
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 有机化学;生物化学;
  • 关键词

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