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Disulfide mapping reveals the domain swapping as the crucial process of the structural conversion of prion protein

机译:二硫键映射揭示域交换是病毒蛋白结构转化的关键过程

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摘要

Prion diseases are infectious conformational diseases. Despite the determination of many native prion protein (PrP) structures and in vitro production of infectious prions from recombinant PrP the structural background of PrP conversion remains the largest unsolved problem. The aggregated state of PrP Sc makes it inaccessible to high resolution techniques, therefore indirect methods have to be used to investigate the conversion process. We engineered disulfide bridges into the structured domain of PrP in order to determine the secondary structure elements that remain conserved upon conversion. Rather surprisingly, introduction of disulfides into each or both of the subdomains B1-H1-B2 and H2-H3 of the C-terminal globular domain retained the robust ability to convert into fibrils with increased content of β-structure, indistinguishable from the wild-type PrP. On the other hand disulfide bridges tethering the two subdomains completely prevented conversion, while their reduction reversed their conversion ability. The same conversion propensity was replicated also in prion infected cell lines. Experiments with combinations of engineered cysteine residues further support that domain swapping, centered on the B2-H2 loop, previously associated to species barrier, leads to PrP swapped dimers as the building block of prion fibrils.
机译:on病毒是传染性构象疾病。尽管确定了许多天然native病毒蛋白(PrP)结构并从重组PrP体外生产感染性pr病毒,但PrP转化的结构背景仍然是最大的未解决问题。 PrP Sc的聚集状态使其无法使用高分辨率技术,因此必须使用间接方法来研究转化过程。我们设计了二硫键到PrP的结构域中,以确定在转化后仍然保守的二级结构元素。出乎意料的是,将二硫化物引入C端球状结构域的每个子结构域B1-H1-B2和H2-H3中,仍具有强大的能力转化为具有增加的β结构含量的原纤维,这与野生动物无法区分输入PrP。另一方面,束缚两个亚结构域的二硫键完全阻止了转化,而它们的还原则逆转了其转化能力。在conversion病毒感染的细胞系中也复制了相同的转化倾向。结合工程化的半胱氨酸残基的实验进一步支持以原先与物种屏障有关的B2-H2环为中心的结构域交换会导致PrP交换的二聚体成为病毒原纤维的构建基块。

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