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首页> 外文期刊>Biophysical Journal >Models of beta-amyloid ion channels in the membrane suggest that channel formation in the bilayer is a dynamic process.
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Models of beta-amyloid ion channels in the membrane suggest that channel formation in the bilayer is a dynamic process.

机译:膜中β-淀粉样蛋白离子通道的模型表明,双层中通道的形成是一个动态过程。

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Here we model the Alzheimer beta-peptide ion channel with the goal of obtaining insight into the mechanism of amyloid toxicity. The models are built based on NMR data of the oligomers, with the universal U-shaped (strand-turn-strand) motif. After 30-ns simulations in the bilayer, the channel dimensions, shapes and subunit organization are in good agreement with atomic force microscopy (AFM). The models use the Abeta(17-42) pentamer NMR-based coordinates. Extension and bending of the straight oligomers lead to two channel topologies, depending on the direction of the curvature: 1), the polar/charged N-terminal beta-strand of Abeta(17-42) faces the water-filled pore, and the hydrophobic C-terminal beta-strand faces the bilayer (CNpNC; p for pore); and 2), the C-terminal beta-strand faces the solvated pore (NCpCN). In the atomistic simulations in a fully solvated DOPC lipid bilayer, the first (CNpNC) channel preserves the pore and conducts solvent; by contrast, hydrophobic collapse blocks the NCpCN channel. AFM demonstrated open pores and collapsed complexes. The final averaged CNpNC pore dimensions (outer diameter 8 nm; inner diameter approximately 2.5 nm) are in the AFM range (8-12 nm; approximately 2 nm, respectively). Further, in agreement with high-resolution AFM images, during the simulations, the channels spontaneously break into ordered subunits in the bilayer; however, we also observe that the subunits are loosely connected by partially disordered inner beta-sheet, suggesting subunit mobility in the bilayer. The cationic channel has strong selective affinity for Ca(2+), supporting experimental calcium-selective beta-amyloid channels. Membrane permeability and consequent disruption of calcium homeostasis were implicated in cellular degeneration. Consequently, the CNpNC channel topology can sign cell death, offering insight into amyloid toxicity via an ion "trap-release" transport mechanism. The observed loosely connected subunit organization suggests that amyloid channel formation in the bilayeris a dynamic, fluid process involving subunit association, dissociation, and channel rearrangements.
机译:在这里,我们以了解淀粉样蛋白毒性机理为目标,对阿尔茨海默病β肽离子通道进行建模。这些模型是基于低聚物的NMR数据构建的,具有通用的U形(链-转链-链)基序。在双层中进行30 ns模拟后,通道尺寸,形状和亚单元组织与原子力显微镜(AFM)完全吻合。该模型使用基于Abeta(17-42)五聚体NMR的坐标。直链低聚物的延伸和弯曲会导致两种通道拓扑结构,具体取决于曲率的方向:1)Abeta(17-42)的极性/带电N端β链面对充满水的孔,并且疏水的C端β链面对双层(CNpNC; p表示孔); 2),C末端的β链面对溶剂化孔(NCpCN)。在完全溶剂化的DOPC脂质双层中的原子模拟中,第一个(CNpNC)通道可保留孔并传导溶剂。相比之下,疏水性塌陷阻塞了NCpCN通道。原子力显微镜显示开孔和复合物塌陷。最终的平均CNpNC孔尺寸(外径8 nm;内径约2.5 nm)在AFM范围内(分别为8-12 nm;约2 nm)。此外,与高分辨率的AFM图像一致,在模拟过程中,通道自发地分成双层中的有序亚基。但是,我们还观察到亚基通过部分无序的内部β-折叠松散连接,表明亚基在双层中的移动性。阳离子通道对Ca(2+)具有较强的选择性亲和力,支持实验性钙选择性β-淀粉样蛋白通道。膜通透性和随之而来的钙稳态的破坏与细胞变性有关。因此,CNpNC通道拓扑可以标志细胞死亡,通过离子“陷阱释放”转运机制提供对淀粉样蛋白毒性的洞察力。观察到的松散连接的亚基组织表明,双层中淀粉样蛋白通道的形成是一个动态的,动态的过程,涉及亚基缔合,解离和通道重排。

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