Knowles Tuomas P J, Smith Jeffrey F, Craig Aidan, Dobson Christopher M, Welland Mark E
Cavendish Laboratory, University of Cambridge, Cambridge CB3 OHE, United Kingdom and Nanoscience Centre, University of Cambridge, Cambridge CB3 OFF, United Kingdom.
Phys Rev Lett. 2006 Jun 16;96(23):238301. doi: 10.1103/PhysRevLett.96.238301. Epub 2006 Jun 12.
Using atomic force microscopy height maps, we resolve and quantify torsional fluctuations in one-dimensional amyloid fibril aggregates self-assembled from three different representative polypeptide systems. Furthermore, we show that angular correlation in these nanoscale structures is maintained over several microns, corresponding to many thousands of molecules along the fibril axis. We model disorder in the fibril in respect of both thermal fluctuations and structural defects, and determine quantitative values for the defect density, as well as the energy scales involved in the fundamental interactions stabilizing these generic structures.
利用原子力显微镜高度图,我们解析并量化了由三种不同代表性多肽系统自组装而成的一维淀粉样原纤维聚集体中的扭转波动。此外,我们表明,这些纳米级结构中的角相关性在几微米范围内得以保持,这对应于沿纤维轴的数千个分子。我们针对热波动和结构缺陷对纤维中的无序进行建模,并确定缺陷密度的定量值,以及稳定这些通用结构的基本相互作用所涉及的能量尺度。