Seuring Carolin, Verasdonck Joeri, Ringler Philippe, Cadalbert Riccardo, Stahlberg Henning, Böckmann Anja, Meier Beat H, Riek Roland
Laboratory of Physical Chemistry, ETH Zürich , Vladimir-Prelog-Weg 2, 8093 Zürich, Switzerland.
Center for Cellular Imaging and Nano Analytics (C-CINA), Biozentrum University of Basel , 4085 Basel, Switzerland.
J Phys Chem B. 2017 Mar 2;121(8):1783-1792. doi: 10.1021/acs.jpcb.6b10624. Epub 2017 Feb 20.
Amyloid polymorphism of twisted and straight β-endorphin fibrils was studied by negative-stain transmission electron microscopy, scanning transmission electron microscopy, and solid-state nuclear magnetic resonance spectroscopy. Whereas fibrils assembled in the presence of salt formed flat, striated ribbons, in the absence of salt they formed mainly twisted filaments. To get insights into their structural differences at the atomic level, 3D solid-state NMR spectra of both fibril types were acquired, allowing the detection of the differences in chemical shifts of C and N atoms in both preparations. The spectral fingerprints and therefore the chemical shifts are very similar for both fibril types. This indicates that the monomer structure and the molecular interfaces are almost the same but that these small differences do propagate to produce flat and twisted morphologies at the mesoscopic scale. This finding is in agreement with both experimental and theoretical considerations on the assembly of polymers (including amyloids) under different salt conditions, which attribute the mesoscopic difference of flat versus twisted fibrils to electrostatic intermolecular repulsions.
通过负染色透射电子显微镜、扫描透射电子显微镜和固态核磁共振光谱研究了扭曲和直链β-内啡肽原纤维的淀粉样多态性。在有盐存在的情况下组装的原纤维形成扁平的、有条纹的带,而在无盐的情况下它们主要形成扭曲的细丝。为了深入了解它们在原子水平上的结构差异,获取了两种原纤维类型的3D固态NMR光谱,从而能够检测两种制剂中C和N原子化学位移的差异。两种原纤维类型的光谱指纹以及因此的化学位移非常相似。这表明单体结构和分子界面几乎相同,但这些小差异确实会传播,从而在介观尺度上产生扁平状和扭曲状形态。这一发现与关于在不同盐条件下聚合物(包括淀粉样蛋白)组装的实验和理论考虑一致,这些考虑将扁平与扭曲原纤维的介观差异归因于静电分子间排斥力。