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The structural basis of yeast prion strain variants.

机译:酵母病毒菌株变体的结构基础。

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摘要

This study aimed to establish a better understanding of the structural basis of yeast prion strains. Prions are infectious agents that are comprised solely of protein, completely devoid of nucleic acid. This protein-only model, however, initially had its share of skeptics who pointed to disease phenomenon that could not be explained by a proteinaceous infectious agent. The existence of different strains was one such phenomenon that provided a formidable challenge to the protein-only prion hypothesis. How could a protein-only infectious agent cause different disease phenotypes in genetically identical animals? The explanation for this strain phenomenon was that there existed multiple infectious conformations of the prion protein, each of which corresponded to a specific disease manifestation. Although there was increasing evidence for multiple infectious conformations of the prion protein, the comprehensive connection from prion conformation to in vivo phenotype would most likely come from the more simple model yeast prion [PSI]. In these studies, I describe this yeast system and our structural studies that probed the conformational and physical differences between the aggregates responsible for two different strain phenotypes. Initial studies established that these two different prion strains, called Sc4 and Sc37, were indeed caused by two different conformations of aggregate. Our studies then established that these two conformations were physically distinct, the Sc4 conformation polymerizing slower but resulting in a physically weaker fiber and the Sc37 conformation polymerizing quickly into a strong and ridged structure. Our subsequent studies used hydrogen/deuterium exchange NMR and mutagenesis two map out in detail the conformational differences between Sc4 and Sc37 fibers. This study found that the Sc4 conformation represented a small core structure, while the Sc37 conformation represented an almost doubling of core structure. These data provided a structural rationale for the observed physical differences between Sc4 and Sc37 aggregates. Thus, a full explanation of how conformational heterogeneity can lead to distinct in vivo phenotypes is now possible.
机译:这项研究旨在建立对酵母病毒菌株结构基础的更好理解。 ions病毒是仅由蛋白质组成的感染因子,完全不含核酸。但是,这种仅蛋白质的模型最初受到怀疑者的指责,他们指出疾病现象无法用蛋白质感染剂解释。不同菌株的存在就是这样一种现象,它对纯蛋白质病毒假说提出了严峻的挑战。纯蛋白质的传染剂如何在基因相同的动物中引起不同的疾病表型?对该菌株现象的解释是was病毒蛋白存在多种感染性构象,每个构象都与特定的疾病表现相对应。尽管越来越多的证据表明病毒蛋白具有多种感染性构象,但从病毒构象到体内表型的全面联系很可能来自更简单的模型酵母病毒[PSI]。在这些研究中,我描述了该酵母系统和我们的结构研究,该研究探讨了负责两种不同菌株表型的聚集体之间的构象和物理差异。初步研究确定,这两种不同的病毒菌株,分别称为Sc4和Sc37,实际上是由两种不同的聚集体构象引起的。然后,我们的研究确定了这两个构象在物理上是截然不同的,Sc4构象聚合较慢,但导致物理上较弱的纤维,而Sc37构象迅速聚合成坚固的脊结构。我们随后的研究使用了氢/氘交换NMR和诱变作用,这两个图详细列出了Sc4和Sc37纤维之间的构象差异。这项研究发现,Sc4构象代表小的核心结构,而Sc37构象代表几乎两倍的核心结构。这些数据为观察到的Sc4和Sc37聚集体之间的物理差异提供了结构原理。因此,现在有可能对构象异质性如何导致不同的体内表型进行全面的解释。

著录项

  • 作者

    Toyama, Brandon Hiroyuki.;

  • 作者单位

    University of California, San Francisco.;

  • 授予单位 University of California, San Francisco.;
  • 学科 Biology Molecular.;Chemistry Biochemistry.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 115 p.
  • 总页数 115
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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