首页> 外文期刊>Proceedings of the National Academy of Sciences of the United States of America >Evidence for assembly of prions with left-handed {beta}-helices into trimers.
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Evidence for assembly of prions with left-handed {beta}-helices into trimers.

机译:将左旋{beta}螺旋的病毒组装成三聚体的证据。

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Studies using low-resolution fiber diffraction, electron microscopy, and atomic force microscopy on various amyloid fibrils indicate that the misfolded conformers must be modular, compact, and adopt a cross-beta structure. In an earlier study, we used electron crystallography to delineate molecular models of the N-terminally truncated, disease-causing isoform (PrP(Sc)) of the prion protein, designated PrP 27-30, which polymerizes into amyloid fibrils, but we were unable to choose between a trimeric or hexameric arrangement of right- or left-handed beta-helical models. From a study of 119 all-beta folds observed in globular proteins, we have now determined that, if PrP(Sc) follows a known protein fold, it adopts either a beta-sandwich or parallel beta-helical architecture. With increasing evidence arguing for a parallel beta-sheet organization in amyloids, we contend that the sequence of PrP is compatible with a parallel left-handed beta-helical fold. Left-handed beta-helices readily form trimers, providing a natural template for a trimeric model of PrP(Sc). This trimeric model accommodates the PrP sequence from residues 89-175 in a beta-helical conformation with the C terminus (residues 176-227), retaining the disulfide-linked alpha-helical conformation observed in the normal cellular isoform. In addition, the proposed model matches the structural constraints of the PrP 27-30 crystals, positioning residues 141-176 and the N-linked sugars appropriately. Our parallel left-handed beta-helical model provides a coherent framework that is consistent with many structural, biochemical, immunological, and propagation features of prions. Moreover, the parallel left-handed beta-helical model for PrP(Sc) may provide important clues to the structure of filaments found in some other neurodegenerative diseases.
机译:使用低分辨率纤维衍射,电子显微镜和原子力显微镜对各种淀粉样原纤维进行的研究表明,错折叠的构象异构体必须是模块化的,紧凑的并且采用交叉β结构。在较早的研究中,我们使用电子晶体学描绘了ion蛋白的N端截短,致病同工型(PrP(Sc))的分子模型,命名为PrP 27-30,它聚合成淀粉样原纤维,但我们无法在右手或左手β螺旋模型的三聚或六聚排列之间进行选择。通过对球形蛋白中119个全β折叠的研究,我们现在确定,如果PrP(Sc)遵循已知的蛋白折叠,则它采用β三明治或平行β螺旋结构。随着越来越多的证据表明在淀粉样蛋白中存在平行的β-折叠结构,我们认为PrP的序列与平行的左手β-螺旋折叠相容。左撇子的β螺旋很容易形成三聚体,为PrP(Sc)的三聚体模型提供了天然模板。该三聚体模型以C末端(残基176-227)的β-螺旋构型容纳来自残基89-175的PrP序列,保留了在正常细胞亚型中观察到的二硫键连接的α-螺旋构型。另外,所提出的模型匹配PrP 27-30晶体的结构约束,适当地定位残基141-176和N-连接的糖。我们平行的左手β螺旋模型提供了一个连贯的框架,该框架与of病毒的许多结构,生化,免疫学和繁殖特征一致。此外,PrP(Sc)的平行左手β-螺旋模型可能为某些其他神经退行性疾病中发现的细丝结构提供重要线索。

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