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Aβ Monomers Transiently Sample Oligomer and Fibril-like Configurations: Ensemble Characterization Using a Combined MD/NMR Approach

机译:Aβ单体瞬态样品低聚物和原纤维样的配置:使用组合的MD / NMR方法的表征。

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摘要

Amyloid β (Aβ) peptides are a primary component of fibrils and oligomers implicated in the etiology of Alzheimer’s disease (AD). However, the intrinsic flexibility of these peptides has frustrated efforts to investigate the secondary and tertiary structure of Aβ monomers, whose conformational landscapes directly contribute to the kinetics and thermodynamics of Aβ aggregation. In this work, de novo replica exchange molecular dynamics (REMD) simulations on the μs/replica timescale are used to characterize the structural ensembles of Aβ42, Aβ40, and M35-oxidized Aβ42, three physiologically relevant isoforms with substantially different aggregation properties. J-coupling data calculated from the REMD trajectories were compared to corresponding NMR-derived values acquired through two different pulse sequences, revealing that all simulations converge on the order of hundreds of ns/replica toward ensembles that yield good agreement with experiment. Though all three Aβ species adopt highly heterogeneous ensembles, these are considerably more structured compared to simulations on shorter timescales. Prominent in the C-terminus are antiparallel β-hairpins between L17-A21, A30-L36, and V39-I41, similar to oligomer and fibril intrapeptide models, that expose these hydrophobic side chains to solvent and may serve as hotspots for self-association. Compared to reduced Aβ42, the absence of a second β-hairpin in Aβ40 and the sampling of alternate β topologies by M35-oxidized Aβ42 may explain the reduced aggregation rates of these forms. A persistent V24-K28 bend motif, observed in all three species, is stabilized by buried backbone to side chain hydrogen bonds with D23 and a cross-region salt bridge between E22 and K28, highlighting the role of the familial AD-linked E22 and D23 residues in Aβ monomer folding. These characterizations help illustrate the conformational landscapes of Aβ monomers at atomic resolution and provide insight into the early stages of Aβ aggregation pathways.
机译:淀粉样蛋白β(Aβ)肽是原纤维和寡聚体的主要成分,与阿尔茨海默氏病(AD)的病因有关。然而,这些肽的固有柔性使研究Aβ单体的二级和三级结构的努力受挫,其构象结构直接影响Aβ聚集的动力学和热力学。在这项工作中,使用从头到尾的从头复制副本交换分子动力学(REMD)模拟来表征Aβ42,Aβ40和M35氧化的Aβ42的结构整体,这是三种生理相关的同工型,具有明显不同的聚集特性。从REMD轨迹计算出的J耦合数据与通过两个不同脉冲序列获得的相应NMR衍生值进行了比较,揭示了所有模拟朝着与实验产生良好一致性的集合收敛于数百ns /副本的数量级。尽管所有三个Aβ物种都采用高度异类的合奏,但与在较短时间尺度上进行的仿真相比,它们的结构要好得多。在C末端突出的是L17-A21,A30-L36和V39-I41之间的反平行β-发夹结构,类似于寡聚物和原纤维内肽模型,这些疏水性侧链暴露于溶剂中,并可能成为自缔合的热点。与还原的Aβ42相比,Aβ40中不存在第二个β-发夹结构,以及M35氧化的Aβ42对交替的β拓扑结构的采样可能解释了这些形式的聚集速率降低。在所有三个物种中观察到的持久性V24-K28弯曲基序通过与D23掩埋的主链至侧链氢键以及E22和K28之间的跨区域盐桥而稳定,从而突出了家族性AD相连的E22和D23的作用Aβ单体折叠中的残基。这些特征有助于说明Aβ单体在原子分辨率下的构象态势,并有助于洞悉Aβ聚集途径的早期阶段。

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