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Engineering Amyloid Polypeptide Interactions Relating to Neurodegenerative Disease and Bio Materials

机译:与神经退行性疾病和生物材料有关的工程淀粉样多肽相互作用

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摘要

The objective of this work was to engineer beta-amyloid (Abeta) peptides implicated in Alzheimer's disease (AD) to uncover mechanisms in neurodegenerative disease pathology and develop novel tools for controlled self-assembly of amyloid fibrils. In the first project, I studied Abeta interactions with another amyloid protein, alpha-synuclein (alphaS), which is implicated in Parkinson's disease (PD). Uncovering protein interactions between Abeta and alphaS is important due to the overlap of symptoms seen in AD and PD patients, as well as evidence linking the two pathologies. To achieve this, monomers, oligomers, and fibrils of both Abeta and alphaS were prepared and co-incubated to study their interactions. Abeta and alphaS were conjugated with fluorophores to track their locations within resulting co-assemblies more closely, along with other characterization techniques. This study revealed that alphaS inhibits Abeta fibrillization and stabilizes oligomerization through the Abeta C-terminus. In a second project, I engineered a dual Abeta-variant self-assembly peptide system for the precise control of amyloid assembly, for potential use in the study of size-dependent neurotoxicity and precise fabrication of amyloid biomaterials. The peptides are derived from the hydrophobic central domain of the Abeta peptide, and they are unique in that alone they do not self-assemble but hetero-assemble in the presence of their assembly partner to form amyloid fibrils similar to those formed by Abeta itself. By engineering the peptide termini and optimizing buffer conditions, the assemblies can also be modulated by balancing electrostatic and hydrophobic interactions. Overall, my PhD study reveals that interactions between different species of amyloid peptides can alter aggregation pathways and structures, also paving the way for many novel research applications.
机译:这项工作的目的是工程化牵涉阿尔茨海默氏病(AD)的β-淀粉样蛋白(Abeta)肽,以揭示神经退行性疾病病理学的机制,并开发新型工具来控制淀粉样蛋白原纤维的自组装。在第一个项目中,我研究了Abeta与另一种淀粉样蛋白α-突触核蛋白(alphaS)的相互作用,该蛋白与帕金森氏病(PD)有关。由于在AD和PD患者中出现的症状重叠以及将这两种病理联系在一起的证据,揭示Abeta和alphaS之间的蛋白质相互作用非常重要。为此,制备了Abeta和alphaS的单体,低聚物和原纤维,并进行了共温育以研究它们之间的相互作用。将Abeta和alphaS与荧光团共轭,以更紧密地跟踪它们在所得共组装物中的位置,以及其他表征技术。这项研究表明alphaS抑制Abeta原纤维形成并通过Abeta C末端稳定寡聚。在第二个项目中,我设计了一个双重Abeta变体自组装肽系统,用于精确控制淀粉样蛋白组装,可潜在地用于研究大小依赖性神经毒性和淀粉样生物材料的精确制造。这些肽衍生自Ab​​eta肽的疏水性中心结构域,它们的独特之处在于它们不会自行组装,而是在其组装配偶体的存在下异源组装,形成类似于Abeta自身形成的淀粉样原纤维。通过工程化肽末端和优化缓冲液条件,还可以通过平衡静电和疏水相互作用来调节装配。总的来说,我的博士研究表明,不同物种的淀粉样肽之间的相互作用可以改变聚集途径和结构,也为许多新颖的研究应用铺平了道路。

著录项

  • 作者

    Candreva, Jason T.;

  • 作者单位

    New York University Tandon School of Engineering.;

  • 授予单位 New York University Tandon School of Engineering.;
  • 学科 Biochemistry.;Chemical engineering.;Neurosciences.
  • 学位 Ph.D.
  • 年度 2018
  • 页码 165 p.
  • 总页数 165
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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