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Pressure-dissociable reversible assembly of intrinsically denatured lysozyme is a precursor for amyloid fibrils

机译:固有变性的溶菌酶的压力可分解可逆组装是淀粉样原纤维的前体

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摘要

Although a diversity of proteins is known to form amyloid fibers, their common mechanisms are not clear. Here, we show that an intrinsically unfolded protein (U), represented by a disulfide-deficient variant of hen lysozyme with no tertiary structure, forms an amyloid-like fibril after prolonged incubation. Using variable pressure NMR along with sedimentation velocity, circular dichroism, and fluorescence measurements, we show that, before the fibril formation, the protein forms a pressure-dissociable, soluble assemblage () with a sedimentation coefficient of 17 S and a rich intermolecular β-sheet structure. The reversible assemblage is characterized with a Gibbs energy for association of –23.3 ± 0.8 kJ·mol–1 and a volume increase of 52.7 ± 11.3 ml·mol–1 per monomer unit, and involves preferential interaction of hydrophobic residues in the initial association step. These results indicate that amyloid fibril formation can proceed from an intrinsically denatured protein and suggest a scheme as a common mechanism of fibril formation in amyloidogenic proteins, where two-way arrows represent reversible processes, one-way arrow represents an irreversible process, and N, U, and represent, respectively, the native conformer, the unfolded monomeric conformer, and the soluble assemblage of unfolded conformers.
机译:尽管已知多种蛋白质可形成淀粉样蛋白纤维,但其共同机制尚不清楚。在这里,我们显示了一个固有的未折叠蛋白(U),由没有三级结构的母鸡溶菌酶的二硫化物缺陷型变体代表,经过长时间的孵育后形成了淀粉样蛋白原纤维。使用可变压力NMR以及沉降速度,圆二色性和荧光测量结果,我们表明,在原纤维形成之前,蛋白质形成了压力可分解的可溶性组合物(),具有17 S的沉积系数和丰富的分子间β-片状结构。可逆组装的特征是缔合的吉布斯能量为–23.3±0.8 kJ·mol –1 ,每个单体的体积增加52.7±11.3 ml·mol –1 单元,并在初始缔合步骤中涉及疏水残基的优先相互作用。这些结果表明,淀粉样蛋白原纤维的形成可以从固有变性的蛋白质开始,并提出了一种方案,作为淀粉样蛋白生成蛋白中原纤维形成的常见机制,其中双向箭头表示可逆过程,单向箭头表示不可逆过程,N,分别代表天然构象异构体,未折叠的单体构象异构体和未折叠的构象异构体的可溶性组合。

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