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Copper-induced structural conversion templates prion protein oligomerization and neurotoxicity

机译:铜诱导的结构转化模板病毒蛋白的寡聚和神经毒性

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Prion protein (PrP) misfolding and oligomerization are key pathogenic events in prion disease. Copper exposure has been linked to prion pathogenesis; however, its mechanistic basis is unknown. We resolve, with single-molecule precision, the molecular mechanism of Cu2+-induced misfolding of PrP under physiological conditions. We also demonstrate that misfolded PrPs serve as seeds for templated formation of aggregates, which mediate inflammation and degeneration of neuronal tissue. Using a single-molecule fluorescence assay, we demonstrate that Cu2+ induces PrP monomers to misfold before oligomer assembly; the disordered amino-terminal region mediates this structural change. Single-molecule force spectroscopy measurements show that the misfolded monomers have a 900-fold higher binding affinity compared to the native isoform, which promotes their oligomerization. Real-time quaking-induced conversion demonstrates that misfolded PrPs serve as seeds that template amyloid formation. Finally, organotypic slice cultures show that misfolded PrPs mediate inflammation and degeneration of neuronal tissue. Our study establishes a direct link, at the molecular level, between copper exposure and PrP neurotoxicity.
机译:on病毒蛋白(PrP)的错误折叠和寡聚是病毒疾病的关键致病事件。铜暴露与病毒的发病机理有关。但是,其机理基础是未知的。我们以单分子精度解决了生理条件下Cu 2 + 诱导的PrP错折叠的分子机理。我们还证明,错误折叠的PrP充当种子以模板形式形成聚集体,介导炎症和神经元组织变性。使用单分子荧光测定法,我们证明了Cu 2 + 诱导PrP单体在寡聚体组装之前发生错误折叠。无序的氨基末端区域介导了这种结构变化。单分子力光谱测量表明,与天然同工型相比,错折叠的单体具有900倍的高结合亲和力,从而促进了它们的低聚。实时地震诱导的转化表明,错误折叠的PrP充当了形成淀粉样蛋白模板的种子。最后,器官型切片培养表明,错误折叠的PrPs介导了神经元组织的炎症和变性。我们的研究在分子水平上建立了铜暴露与PrP神经毒性之间的直接联系。

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