Compressive deformation of ultralong amyloid fibrils

被引:0
作者
Raffaella Paparcone
Steven Cranford
Markus J. Buehler
机构
[1] Massachusetts Institute of Technology,Laboratory for Atomistic and Molecular Mechanics, Department of Civil and Environmental Engineering
[2] Massachusetts Institute of Technology,Center for Materials Science and Engineering
[3] Massachusetts Institute of Technology,Center for Computational Engineering
来源
Acta Mechanica Sinica | 2010年 / 26卷
关键词
Amyloid; Coarse-grain; Molecular simulation; Nanomechanics; Materiomics;
D O I
暂无
中图分类号
学科分类号
摘要
Involved in various neurodegenerative diseases, amyloid fibrils and plaques feature a hierarchical structure, ranging from the atomistic to the micrometer scale. At the atomistic level, a dense and organized hydrogen bond network is resembled in a beta-sheet rich secondary structure, which drives a remarkable stiffness in the range of 10–20GPa, larger than many other biological nanofibrils, a result confirmed by both experiment and theory. However, the understanding of how these exceptional mechanical properties transfer from the atomistic to the nanoscale remains unknown. Here we report a multiscale analysis that, from the atomistic-level structure of a single fibril, extends to the mesoscale level, reaching size scales of hundreds of nanometers. We use parameters directly derived from full atomistic simulations of Aβ (1–40) amyloid fibrils to parameterize a mesoscopic coarse-grained model, which is used to reproduce the elastic properties of amyloid fibrils. We then apply our mesoscopic model in an analysis of the buckling behavior of amyloid fibrils with different lengths and report a comparison with predictions from continuum beam theory. An important implication of our results is a severe reduction of the effective modulus due to buckling, an effect that could be important to interpret experimental results of ultra-long amyloid fibrils. Our model represents a powerful tool to mechanically characterize molecular structures on the order of hundreds of nanometers to micrometers on the basis of the underlying atomistic behavior. The work provides insight into structural and mechanical properties of amyloid fibrils and may enable further analysis of larger-scale assemblies such as amyloidogenic bundles or plaques as found in disease states.
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页码:977 / 986
页数:9
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共 86 条
[1]  
Chiti F.(2006)Protein misfolding, functional amyloid, and human disease Annu. Rev. Biochem. 75 333-366
[2]  
Dobson C.M.(1990)Cognitive impairment in parkinsons-disease-amyloid plaques, neurofibrillary tangles, and neuropil threads in the cerebral-cortex J. Neural Transmission Parkinsons Dis. Dement. Sect. 2 45-57
[3]  
Braak H.(2010)The amylome, all proteins capable of forming amyloid-like fibrils Proc. Natl. Acad. Sci. USA 107 3487-3492
[4]  
Braak E.(2007)Role of intermolecular forces in defining properties of protein nanofibrils Science 318 1900-1902
[5]  
Goldschmidt L.(2006)Characterization of the nanoscale properties of individual amyloid fibrils Proc. Natl. Acad. Sci. USA 43 15806-15811
[6]  
Teng P.(2010)Atomistic simulation of nanomechanical properties of Alzheimer’s A J. Biomech. 43 1196-1201
[7]  
Riek R.(2005) (1–40) amyloid fibrils under compressive and tensile loading Nature 435 773-778
[8]  
Knowles T.P.(2002)Structure of the cross-beta spine of amyloid-like fibrils Proc. Natl. Acad. Sci. USA 99 9196-9201
[9]  
Fitzpatrick A.W.(1999)The protofilament structure of insulin amyloid fibrils EMBO J. 18 815-821
[10]  
Meehan S.(2000)Cryo-electron microscopy structure of an SH3 amyloid fibril and model of the molecular packing J. Mol. Biol. 300 1033-1039