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Architecture effects on multivalent interactions by polypeptide-based multivalent ligands.

机译:体系结构对基于多肽的多价配体对多价相互作用的影响。

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摘要

Multivalent interactions are characterized by the simultaneous binding between multiple ligands and multiple binding sites, either in solutions or at interfaces. In biological systems, most multivalent interactions occur between protein receptors and carbohydrate ligands through hydrogen-bonding and hydrophobic interactions. Compared with weak affinity binding between one ligand and one binding site, i.e. monovalent interaction, multivalent interactioins provide greater avidity and specificity, and therefore play unique roles in a broad range of biological activities. Moreover, the studies of multivalent interactions are also essential for producing effective inhibitors and effectors of biological processes that could have important therapeutic applications.;Synthetic multivalent ligands have been designed to mimic the biological functions of natural multivalent interactions, and various types of scaffolds have been used to display multiple ligands, including small molecules, linear polymers, dendrimers, nanoparticle surfaces, monolayer surfaces and liposomes. Studies have shown that multivalent interactions can be highly affected by various architectural parameters of these multivalent ligands, including ligand identities, valencies, spacing, ligand densities, nature of linker arms, scaffold length and scaffold conformation. Most of these multivalent ligands are chemically synthesized and have limitations of controlling over sequence and conformation, which is a barrier for mimicking ordered and controlled natural biological systems. Therefore, multivalent ligands with precisely controlled architecture are required for improved structure-function relationship studies. Protein engineering methods with subsequent chemical coupling of ligands provide significant advantages of controlling over backbone conformation and functional group placement, and therefore have been used to synthesize recombinant protein-based materials with desired properties similar to natural protein materials, including structural as well as functional proteins. Therefore, polypeptide-based multivalent scaffolds are used to display ligands to assess the contribution of different architectural parameters to the multivalent binding events.;In this work, a family of alanine-rich alpha-helical glycopolypeptides was designed and synthesized by a combination of protein engineering and chemical coupling, to display two types of saccharide ligands for two different multivalent binding systems. The valencies, chain length and spacing between adjacent ligands of these multivalent ligands were designed in order to study architecture effects on multivalent interactions. The polypeptides and their glycoconjugates were characterized via various methods, including SDS-PAGE, NMR, HPLC, amino acid analysis (AAA), MALDI, circular dichroism (CD) and GPC. In the first multivalent binding system, cholera toxin B pentamer (CT B5) was chosen to be the protein receptor due to its well-characterized structure, lack of significant steric interference of binding to multiple binding sites, and requirement of only simple monosaccharide as ligands. Galactopyranoside was incorporated into polypeptide scaffolds through amine-carboxylic acid coupling to the side chains of glutamic acid residues. The inhibition and binding to CT B5 of these glycopolypeptide ligands were evaluated by direct enzyme-linked assay (DELA). As a complement method, weak affinity chromatography (WAC) was also used to evaluate glycopolypeptides binding to a CT B5 immobilized column. The architecture effects on CT B 5 inhibition are discussed. In the second system, cell surface receptor L-selectin was targeted by polypeptide-based multivalent ligands containing disulfated galactopyranoside ligands, due to its important roles in various immunological activities. The effects of glycopolypeptide architectural variables L-selectin shedding were evaluated via ELISA-based assays. These polypeptide-based multivalent ligands are suggested to be useful for elucidating architecture effects on multivalent interactions, manipulating multivalent interactions and the subsequent cellular responses in different systems. These materials have great potential applications in therapeutics and could also provide guidelines for design of multivalent ligands for other protein receptors.
机译:多价相互作用的特征在于溶液或界面中多个配体和多个结合位点之间的同时结合。在生物系统中,大多数多价相互作用通过氢键和疏水相互作用发生在蛋白质受体和碳水化合物配体之间。与一种配体和一个结合位点之间的弱亲和力结合(即单价相互作用)相比,多价相互作用蛋白提供更大的亲和力和特异性,因此在广泛的生物学活性中发挥独特的作用。此外,多价相互作用的研究对于产生可能具有重要治疗应用的有效的生物学过程抑制剂和效应子也是必不可少的。合成的多价配体已经被设计来模仿天然多价相互作用的生物学功能,并且已经开发了各种类型的支架。用于展示多种配体,包括小分子,线性聚合物,树枝状聚合物,纳米颗粒表面,单层表面和脂质体。研究表明,这些多价配体的各种结构参数,包括配体身份,化合价,间距,配体密度,连接臂的性质,支架长度和支架构象,都可以高度影响多价相互作用。这些多价配体中的大多数是化学合成的,并且具有控制序列和构象的限制,这是模仿有序和受控的自然生物系统的障碍。因此,需要精确控制结构的多价配体来改善结构-功能关系研究。具有配体随后化学偶联的蛋白质工程方法具有控制主链构象和官能团位置的显着优势,因此已用于合成具有与天然蛋白质材料类似的所需特性的重组蛋白质基材料,包括结构蛋白和功能蛋白。因此,基于多肽的多价支架被用于展示配体,以评估不同的结构参数对多价结合事件的贡献。在这项工作中,通过蛋白质的组合设计并合成了一个富含丙氨酸的α-螺旋糖多肽家族。工程和化学偶联,以显示用于两种不同多价结合系统的两种类型的糖配体。设计了这些多价配体的化合价,链长和相邻配体之间的间隔,以研究体系结构对多价相互作用的影响。多肽及其糖缀合物可通过多种方法进行表征,包括SDS-PAGE,NMR,HPLC,氨基酸分析(AAA),MALDI,圆二色性(CD)和GPC。在第一个多价结合系统中,霍乱毒素B五聚体(CT B5)被选为蛋白质受体,因为其结构良好,对多个结合位点的结合缺乏明显的空间干扰,并且仅需要简单的单糖作为配体。通过将氨基羧酸偶联至谷氨酸残基的侧链,将吡喃半乳糖苷掺入多肽支架中。通过直接酶联测定(DELA)评估了这些糖多肽配体的抑制作用和与CT B5的结合。作为一种补充方法,弱亲和色谱法(WAC)也用于评估糖多肽与CT B5固定柱的结合。讨论了体系结构对CT B 5抑制的影响。在第二个系统中,由于细胞表面受体L-选择蛋白在各种免疫活动中的重要作用,因此它被含二硫化半乳糖吡喃糖苷配体的多肽基多价配体所靶向。通过基于ELISA的分析评估糖多肽结构变量L-选择蛋白脱落的影响。这些基于多肽的多价配体被认为可用于阐明体系结构对多价相互作用的影响,操纵多价相互作用以及随后在不同系统中的细胞反应。这些材料在治疗中具有巨大的潜在应用,也可以为设计其他蛋白质受体的多价配体提供指导。

著录项

  • 作者

    Liu, Shuang.;

  • 作者单位

    University of Delaware.;

  • 授予单位 University of Delaware.;
  • 学科 Chemistry Biochemistry.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 215 p.
  • 总页数 215
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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