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Elucidating glycosaminoglycan-protein-protein interactions using carbohydrate microarray and computational approaches

机译:使用碳水化合物微阵列和计算方法阐明糖胺聚糖-蛋白质-蛋白质的相互作用

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摘要

Glycosaminoglycan polysaccharides play critical roles in many cellular processes, ranging from viral invasion and angiogenesis to spinal cord injury. Their diverse biological activities are derived from an ability to regulate a remarkable number of proteins. How ever, few methods exist for the rapid identification of glycosami noglycan-protein interactions and for studying the potential of glycosaminoglycans to assemble multimeric protein complexes. Here, we report a multidisciplinary approach that combines new carbohydrate microarray and computational modeling methodol ogies to elucidate glycosaminoglycan-protein interactions. The approach was validated through the study of known protein part ners for heparan and chondroitin sulfate, including fibroblast growth factor 2 (FGF2) and its receptor FGFR1, the malarial protein VAR2CSA, and tumor necrosis factor-α (TNF-α). We also applied the approach to identify previously undescribed interactions be tween a specific sulfated epitope on chondroitin sulfate, CS-E, and the neurotrophins, a critical family of growth factors involved in the development, maintenance, and survival of the vertebrate nervous system. Our studies show for the first time that CS is capable of assembling multimeric signaling complexes and modu lating neurotrophin signaling pathways. In addition, we identify a contiguous CS-E-binding site by computational modeling that suggests a potential mechanism to explain how CS may promote neurotrophin-tyrosine receptor kinase (Trk) complex formation and neurotrophin signaling. Together, our combined microarray and computational modeling methodologies provide a general, facile means to identify new glycosaminoglycan-protein-protein interactions, as well as a molecular-level understanding of those complexes.
机译:糖胺聚糖多糖在许多细胞过程中起着至关重要的作用,范围从病毒入侵和血管生成到脊髓损伤。它们的多种生物活性来自调节大量蛋白质的能力。但是,很少有方法可以快速鉴定糖胺糖聚糖与蛋白质的相互作用,以及研究糖胺聚糖组装多聚体蛋白质复合物的潜力。在这里,我们报告了一个多学科的方法,结合了新的碳水化合物微阵列和计算建模方法,以阐明糖胺聚糖-蛋白质相互作用。该方法已通过对已知的肝素和硫酸软骨素蛋白合作伙伴的研究得到了验证,其中包括成纤维细胞生长因子2(FGF2)及其受体FGFR1,疟疾蛋白VAR2CSA和肿瘤坏死因子-α(TNF-α)。我们还应用了该方法,以鉴定硫酸软骨素,CS-E和硫酸神经营养蛋白之间特定的硫酸化抗原决定簇之间的相互作用,而神经营养蛋白是脊椎动物神经系统发育,维持和存活的关键生长因子家族。我们的研究首次表明CS能够组装多聚体信号复合物并调节神经营养蛋白信号通路。此外,我们通过计算模型确定了一个连续的CS-E结合位点,该位点提出了一个潜在的机制来解释CS如何促进神经营养蛋白-酪氨酸受体激酶(Trk)复合物的形成和神经营养蛋白的信号传导。我们的微阵列和计算建模方法相结合,共同提供了一种简便的方法来识别新的糖胺聚糖-蛋白质-蛋白质相互作用,以及对这些复合物的分子水平的了解。

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    California Institute of Technology and Howard Hughes Medical Institute, Division of Chemistry and Chemical Engineering, 1200 East California Boulevard, Pasadena, CA 91125;

    California Institute of Technology and Howard Hughes Medical Institute, Division of Chemistry and Chemical Engineering, 1200 East California Boulevard, Pasadena, CA 91125;

    California Institute of Technology and Howard Hughes Medical Institute, Division of Chemistry and Chemical Engineering, 1200 East California Boulevard, Pasadena, CA 91125;

    Materials and Process Simulation Center, California Institute of Technology, Division of Chemistry and Chemical Engineering, 1200 East California Boulevard, Pasadena, CA 91125;

    Stanford University School of Medicine and Howard Hughes Medical Institute,Departments of Molecular and Cellular Physiology and Structural Biology, Stanford, CA 94305;

    Materials and Process Simulation Center, California Institute of Technology, Division of Chemistry and Chemical Engineering, 1200 East California Boulevard, Pasadena, CA 91125,Graduate School of EEWS (WCU), Korea Advanced Institute of Science Technology, Daejeon, 305-701, Korea;

    Materials and Process Simulation Center, California Institute of Technology, Division of Chemistry and Chemical Engineering, 1200 East California Boulevard, Pasadena, CA 91125;

  • 收录信息 美国《科学引文索引》(SCI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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