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Antiparallel β-sheet structure within the C-terminal region of 42-residue Alzheimer’s β-amyloid peptides when they form 150 kDa oligomers

机译:当形成150 kDa寡聚体时具有42个残基的阿尔茨海默氏症β-淀粉样肽的C端区域内的反平行β-折叠结构

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摘要

Understanding the molecular structures of amyloid-β (Aβ) oligomers and underlying assembly pathways will advance our understanding of Alzheimer’s disease (AD) at the molecular level. This understanding could contribute to disease prevention, diagnosis, and treatment strategies, as oligomers play a central role in AD pathology. We have recently presented a procedure for production of 150 kDa oligomeric samples of Aβ(1–42) (the 42-residue variant of the Aβ peptide) that are compatible with solid state NMR analysis, and we have shown that these oligomers and amyloid fibrils differ in intermolecular arrangement of β-strands. Here we report new solid state NMR constraints that indicate antiparallel intermolecular alignment of β-strands within the oligomers. Specifically, 150 kDa Aβ(1–42) oligomers with uniform 13C and 15N isotopic labels at I32, M35, G37 and V40 exhibit β-strand secondary chemical shifts in 2D fpRFDR NMR spectra, spatial proximities between I32 and V40 as well as between M35 and G37 in 2D DARR spectra, and close proximity between M35 Hα and G37 Hα in 2D CHHC spectra. Furthermore, 2D DARR analysis of an oligomer sample prepared with 30% labeled peptide indicates that the I32-V40 and M35-G37 contacts are between residues on different molecules. We employ molecular modeling to compare the newly derived experimental constraints with previously proposed geometries for arrangement of Aβ molecules into oligomers.
机译:了解淀粉样β(Aβ)低聚物的分子结构和潜在的组装途径将在分子水平上增进我们对阿尔茨海默氏病(AD)的理解。由于寡聚体在AD病理中起着核心作用,因此这种理解可能有助于疾病的预防,诊断和治疗策略。我们最近提出了一种与固态NMR分析兼容的150 kDaAβ(1-42)(Aβ肽的42个残基变异体)寡聚样品的制备方法,并且我们已经证明这些寡聚体和淀粉样原纤维β链的分子间排列方式不同。在这里,我们报告了新的固态NMR约束条件,表明在低聚物中β链反平行的分子间排列。具体而言,在I32,M35,G37和V40处具有均匀 13 C和 15 N同位素标记的150 kDaAβ(1-42)低聚物在β32中表现出β链二级化学位移。二维fpRFDR NMR光谱,二维DARR光谱中I32和V40之间以及M35和G37之间的空间邻近度,以及二维CHHC光谱中M35Hα和G37Hα之间的紧密邻近度。此外,用30%标记肽制备的低聚物样品的2D DARR分析表明,I32-V40和M35-G37接触位于不同分子上的残基之间。我们采用分子模型将新获得的实验约束与先前提出的将Aβ分子排列成低聚物的几何形状进行比较。

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