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Molecular Engineering of a Secreted Highly Homogeneous and Neurotoxic Aβ Dimer

机译:分泌的高度均一且具有神经毒性的Aβ二聚体的分子工程

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摘要

Aβ oligomers play a key role in the pathophysiology of Alzheimer’s disease. Research into structure−function relationships of Aβ oligomers has been hampered by the lack of large amounts of homogeneous and stable material. Using computational chemistry, we designed conservative cysteine substitutions in Aβ aiming at accelerating and stabilizing assembly of Aβ dimers by an intermolecular disulfide bond without changing its folding. Molecular dynamics simulations suggested that mutants AβS8C and AβM35C exhibited structural properties similar to those of Aβ wildtype dimers. Full length, mutant APP was stably expressed in transfected cell lines to study assembly of Aβ oligomers in the physiological, secretory pathway and to avoid artifacts resulting from simultaneous in vitro oxidation and aggregation. Biochemical and neurophysiological analysis of supernatants indicated that AβS8C generated an exclusive, homogeneous, and neurotoxic dimer, whereas AβM35C assembled into dimers, tetramers, and higher oligomers. Thus, molecular engineering enabled generation of bioactive, homogeneous, and correctly processed Aβ dimers in vivo.
机译:Aβ低聚物在阿尔茨海默氏病的病理生理中起关键作用。缺乏大量均匀且稳定的材料阻碍了对Aβ低聚物结构与功能关系的研究。使用计算化学,我们设计了Aβ中的保守半胱氨酸取代,旨在通过分子间二硫键加速和稳定Aβ二聚体的组装而不改变其折叠性。分子动力学模拟表明,突变体AβS8C和AβM35C表现出与Aβ野生型二聚体相似的结构特性。全长突变APP在转染的细胞系中稳定表达,以研究Aβ寡聚体在生理,分泌途径中的组装,并避免了同时进行的体外氧化和聚集所导致的假象。上清液的生化和神经生理分析表明,AβS8C产生了排他的,均质的和神经毒性的二聚体,而AβM35C组装成二聚体,四聚体和更高的低聚体。因此,分子工程使得能够在体内产生生物活性的,均质的和正确加工的Aβ二聚体。

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