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Investigations of molecular interactions at the chemistry-biology interface: The design of interfacial biomaterials and the modulation of galectin-3 aggregation with multivalent saccharide ligands.

机译:在化学-生物学界面上的分子相互作用的研究:界面生物材料的设计和多价糖配体对Galectin-3聚集的调节。

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摘要

Myriad biological processes are governed by chemical reactions that occur on cell surfaces. Cellular communication, transportation and recognition are all chemically-mediated processes that occur at the cell-cell interface. While 'interface' describes the physical area of contact between cellular systems, it also describes the area of study that coalesces between the traditional disciplines of chemistry and biology. Utilizing chemical and biological techniques, two approaches are presented that investigate the mechanisms of molecular interactions at biological interfaces.;In the first part of this work, a novel approach to direct biological processes that occur at the surface of artificial materials is described. Many biomedical implants are hindered by overly robust fibrotic and inflammatory responses that compromise the function of the device. A material that can promote cellular adhesion and tissue development at the material-biologic interface would reduce the potential for an adverse response. A multi-faceted strategy has been developed to construct 'interfacial biomaterials' (IFBMs) that mediate specific biological processes via increased cellular adhesion to medically-relevant materials. We have developed a combinatorial phage display selection strategy to identify peptides that show increased affinity for natural and artificial substrates. Peptides specific to both stainless steel and polycarbonate were identified by this methodology. IFBMs containing a stainless steel-binding peptide and an osteoblast-specific tetrapeptide were chemically synthesized for cell-culture studies. In vitro, the coatings significantly enhanced osteoblast adhesion to treated surfaces in both overnight and three-day cultures.;In the second part of this work, the molecular basis of protein-carbohydrate binding is considered. Galectin-3 is a protein that shows natural affinity for β-galactosides, specifically lactose and LacNAc. Mono-, bi-, and trivalent ligands displaying lactose epitopes were constructed to investigate their aggregative properties towards full-length galectin-3 and truncated carbohydrate recognition domain (CRD). Isothermal titration calorimetry studies with full-length protein shows a greater than two-fold binding enhancement in affinity for the bivalent ligand compared to monovalent ligand. The same bivalent ligand shows no enhancement when binding the truncated CRD. This observation supports the hypothesis that the N-terminal domain present in galectin-3 promotes aggregation in aqueous solution. This behavior also demonstrates unequivocally that protein-protein interactions and aggregation are the primary cause for affinity increases observed with polyvalent saccharide ligands, and unambiguously establishes a molecular basis for the cluster glycoside effect.
机译:无数的生物过程受细胞表面发生的化学反应控制。细胞通讯,运输和识别都是发生在细胞-细胞界面的化学介导过程。 “接口”描述了细胞系统之间的物理接触区域,同时还描述了在传统化学和生物学学科之间融合的研究领域。利用化学和生物学技术,提出了两种方法来研究生物学界面上分子相互作用的机理。在本工作的第一部分,描述了一种新的方法来指导人工材料表面发生的生物学过程。许多生物医学植入物由于过度健壮的纤维化和炎症反应而受到损害,这些反应损害了设备的功能。可以促进材料-生物界面处细胞粘附和组织发育的材料将减少发生不良反应的可能性。已经开发出一种多方面的策略来构建“界面生物材料”(IFBM),该界面生物材料通过增加细胞与医学相关材料的粘附来介导特定的生物过程。我们已经开发了一种组合噬菌体展示选择策略,以鉴定对天然和人工底物显示出增加的亲和力的肽。通过这种方法鉴定了不锈钢和聚碳酸酯特有的肽。化学合成包含不锈钢结合肽和成骨细胞特异性四肽的IFBM,用于细胞培养研究。在体外,该涂层在过夜和三天的培养中均显着增强了成骨细胞对处理过的表面的粘附力。;在这项工作的第二部分,考虑了蛋白质与碳水化合物结合的分子基础。 Galectin-3是一种蛋白质,对β-半乳糖苷,特别是乳糖和LacNAc具有天然亲和力。构建展示乳糖表位的单价,二价和三价配体,以研究其对全长半乳糖凝集素3和截短的碳水化合物识别域(CRD)的聚集特性。用全长蛋白质进行的等温滴定量热法研究显示,与单价配体相比,对二价配体的亲和力结合提高了两倍以上。当结合截短的CRD时,相同的二价配体没有显示出增强。该观察结果支持了存在于galectin-3中的N端结构域促进水溶液中聚集的假设。这种行为也明确表明,蛋白质-蛋白质相互作用和聚集是多价糖配体观察到的亲和力增加的主要原因,并且明确地为簇状糖苷效应建立了分子基础。

著录项

  • 作者

    Parise, James Anthony, Jr.;

  • 作者单位

    Duke University.;

  • 授予单位 Duke University.;
  • 学科 Chemistry Organic.;Chemistry Physical.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 155 p.
  • 总页数 155
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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