Petkova Aneta T, Yau Wai-Ming, Tycko Robert
Laboratory of Chemical Physics, National Institute of Diabetes and Digestive and Kidney Diseases, National Institutes of Health, Bethesda, Maryland 20892-0520, USA.
Biochemistry. 2006 Jan 17;45(2):498-512. doi: 10.1021/bi051952q.
We describe solid-state nuclear magnetic resonance (NMR) measurements on fibrils formed by the 40-residue beta-amyloid peptide associated with Alzheimer's disease (Abeta(1-40)) that place constraints on the identity and symmetry of contacts between in-register, parallel beta-sheets in the fibrils. We refer to these contacts as internal and external quaternary contacts, depending on whether they are within a single molecular layer or between molecular layers. The data include (1) two-dimensional 13C-13C NMR spectra that indicate internal quaternary contacts between side chains of L17 and F19 and side chains of I32, L34, and V36, as well as external quaternary contacts between side chains of I31 and G37; (2) two-dimensional 15N-13C NMR spectra that indicate external quaternary contacts between the side chain of M35 and the peptide backbone at G33; (3) measurements of magnetic dipole-dipole couplings between the side chain carboxylate group of D23 and the side chain amine group of K28 that indicate salt bridge interactions. Isotopic dilution experiments allow us to make distinctions between intramolecular and intermolecular contacts. On the basis of these data and previously determined structural constraints from solid-state NMR and electron microscopy, we construct full molecular models using restrained molecular dynamics simulations and restrained energy minimization. These models apply to Abeta(1-40) fibrils grown with gentle agitation. We also present evidence for different internal quaternary contacts in Abeta(1-40) fibrils grown without agitation, which are morphologically distinct.
我们描述了对由与阿尔茨海默病相关的40个残基的β-淀粉样肽(Aβ(1-40))形成的纤维进行的固态核磁共振(NMR)测量,这些测量对纤维中同向平行β-折叠之间接触的性质和对称性施加了限制。根据这些接触是在单个分子层内还是在分子层之间,我们将其称为内部和外部四级接触。数据包括:(1)二维13C-13C NMR光谱,表明L17和F19侧链与I32、L34和V36侧链之间的内部四级接触,以及I31和G37侧链之间的外部四级接触;(2)二维15N-13C NMR光谱,表明M35侧链与G33处肽主链之间的外部四级接触;(3)D23侧链羧基与K28侧链胺基之间磁偶极-偶极耦合的测量,表明盐桥相互作用。同位素稀释实验使我们能够区分分子内和分子间接触。基于这些数据以及先前从固态NMR和电子显微镜确定的结构限制,我们使用受限分子动力学模拟和受限能量最小化构建了完整的分子模型。这些模型适用于在温和搅拌下生长的Aβ(1-40)纤维。我们还提供了证据,证明在无搅拌条件下生长的Aβ(1-40)纤维中存在不同的内部四级接触,这些纤维在形态上有所不同。