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Isotope-edited FTIR reveals distinct aggregation and structural behaviors of unmodified and pyroglutamylated amyloid β peptides

机译:同位素编辑的FTIR显示未修饰的和焦谷氨酰化淀粉样β肽的独特聚集和结构行为

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摘要

Amyloid β peptide (Aβ) is causatively associated with Alzheimer’s disease (AD), and N-terminally truncated and pyroglutamylated Aβ peptides (AβpE) exert hypertoxic effect by an unknown mechanism. Recent evidence has identified the prefibrillar oligomers of Aβ, not the fibrils, as the prevalent cytotoxic species. Structural characterization of Aβ and AβpE oligomers is therefore important for better understanding of their toxic effect. Here we have used isotope-edited Fourier transform infrared (FTIR) spectroscopy to identify the conformational changes in Aβ1-42 and AβpE3-42 upon aggregation, individually and in 1:1 molar combination. During the first two hours of exposure to aqueous buffer, the peptides undergo transition from mostly α-helical to mostly β-sheet structure. Data on peptides 13C,15N-labeled at K16L17V18 or V36G37G38V39 allowed construction of structural models for the monomer and early oligomers. The peptide monomer comprises a β-hairpin that involves residues upstream of the K16L17V18 sequence and an N-terminal α-helix. The oligomers form by non-H-bonding interactions between the β-strands of neighboring β-hairpins, in lateral or staggered manner, with the strands running parallel or antiparallel. Relative α-helical and β-sheet propensities of Aβ1-42 and AβpE3-42 depend on the ionic strength of the buffer, emphasizing the importance of ionic interactions in Aβ peptide structure and aggregation. It is inferred that N-terminal modification of AβpE3-42 affects the helix stability and thereby modulates β-sheet oligomer formation. The data thus provide new insight into the molecular mechanism of Aβ oligomerization by emphasizing the role of the N-terminal transient α-helical structure and by identifying structural constraints for molecular organization of the oligomers.
机译:淀粉样蛋白β肽(Aβ)与阿尔茨海默氏病(AD)有因果关系,N端截短和焦谷氨酰化的Aβ肽(AβpE)通过未知机制发挥高毒性作用。最近的证据已将Aβ的原纤维寡聚体而非原纤维鉴定为普遍的细胞毒性物质。因此,Aβ和AβpE低聚物的结构表征对于更好地了解其毒性作用很重要。在这里,我们已经使用同位素编辑的傅立叶变换红外(FTIR)光谱来鉴定Aβ1-42和AβpE3-42聚集后的构象变化,分别以1:1摩尔比组合。在暴露于水性缓冲液的前两个小时内,肽段经历了从大部分α-螺旋到大部分β-折叠结构的转变。肽段 13 C, 15 N标记为K 16 L 17 V 18 或V 36 G 37 G 38 V 39 允许构建单体和早期低聚物的结构模型。该肽单体包含一个β-发夹,该发夹涉及K 16 L 17 V 18 序列上游的残基和一个N端α-螺旋。寡聚物通过相邻的β-发夹的β链之间的非H键相互作用以横向或交错的方式形成,链平行或反平行。 Aβ1-42和AβpE3-42的相对α-螺旋和β-折叠倾向取决于缓冲液的离子强度,强调了离子相互作用对Aβ肽结构和聚集的重要性。推断AβpE3-42的N末端修饰影响螺旋稳定性,从而调节β-片层低聚物的形成。因此,数据通过强调N末端瞬态α螺旋结构的作用并确定低聚物分子组织的结构限制,为Aβ寡聚化的分子机理提供了新的见识。

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