Fibril formation from the amyloid-β peptide is governed by a dynamic equilibrium involving association and dissociation of the monomer

被引:11
作者
Hoshino M. [1 ]
机构
[1] Graduate School of Pharmaceutical Sciences, Kyoto University, 46-29 Yoshida-Shimoadachi, Sakyo-ku, Kyoto
基金
日本学术振兴会;
关键词
Amyloid fibril; Amyloid-β; peptide; Dynamic equilibrium; NMR; Nucleation-dependent polymerization model;
D O I
10.1007/s12551-016-0217-7
中图分类号
学科分类号
摘要
Here I review the molecular mechanisms by which water-soluble monomeric amyloid-β (Aβ) peptides are transformed into well-organized supramolecular complexes called amyloid fibrils. The mechanism of amyloid formation is considered theoretically on the basis of experimental results, and the structural and mechanistic similarities of amyloid fibrils to three-dimensional crystals are highlighted. A number of important results from the literature are described. These include the observation that a correct ratio of monomer association and dissociation rate constants is key for formation of well-organized amyloid fibrils. The dynamic nature of the amyloid-β structure is discussed, along with the possibly obligate requirement of the transient formation of a hairpin-like fold prior to its incorporation into amyloid fibrils. Many rounds of monomer association and dissociation events may be present during an apparently silent lag-period. Amongst these association/dissociation events, interaction between the C-terminal regions of the Aβ peptide seems to be more favored. Such association and dissociation events occurring in a “trial-and-error” fashion may be an important requirement for the formation of well-organized amyloid fibrils. © 2016, International Union for Pure and Applied Biophysics (IUPAB) and Springer-Verlag Berlin Heidelberg.
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页码:9 / 16
页数:7
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共 44 条
[1]  
Ahn H.C., Le Y.T., Nagchowdhuri P.S., Derose E.F., Putnam-Evans C., London R.E., Markley J.L., Lim K.H., NMR characterizations of an amyloidogenic conformational ensemble of the PI3K SH3 domain, Protein Sci, 15, pp. 2552-2557, (2006)
[2]  
Antzutkin O.N., Balbach J.J., Leapman R.D., Rizzo N.W., Reed J., Tycko R., Multiple quantum solid-state NMR indicates a parallel, not antiparallel, organization of β-sheets in Alzheimer’s β-amyloid fibrils, Proc Natl Acad Sci U S A, 97, pp. 13045-13050, (2000)
[3]  
Balbach J.J., Petkova A.T., Oyler N.A., Antzutkin O.N., Gordon D.J., Meredith S.C., Tycko R., Supramolecular structure in full-length Alzheimer’s β-amyloid fibrils: evidence for a parallel β-sheet organization from solid-state nuclear magnetic resonance, Biophys J, 83, pp. 1205-1216, (2002)
[4]  
Benzinger T.L., Gregory D.M., Burkoth T.S., Miller-Auer H., Lynn D.G., Botto R.E., Meredith S.C., Propagating structure of Alzheimer’s β-amyloid(10–35) is parallel β-sheet with residues in exact register, Proc Natl Acad Sci U S A, 95, pp. 13407-13412, (1998)
[5]  
Bertoncini C.W., Jung Y.S., Fernandez C.O., Hoyer W., Griesinger C., Jovin T.M., Zweckstetter M., Release of long-range tertiary interactions potentiates aggregation of natively unstructured α-synuclein, Proc Natl Acad Sci U S A, 102, pp. 1430-1435, (2005)
[6]  
Carulla M., Caddy G.L., Hall D.R., Zurdo J., Gairi M., Feliz M., Giralt E., Robinson C.V., Dobson C.M., Molecular recycling within amyloid fibrils, Nature, 436, pp. 554-558, (2005)
[7]  
Cavanagh J., Fairbrother W.J., Palmer A.G., Rance M., Skelton N.J., Protein NMR spectroscopy, pp. 333-404, (2007)
[8]  
Dobson C.M., Protein misfolding, evolution and disease, Trends Biochem Sci, 24, pp. 329-332, (1999)
[9]  
Donon C.M., The structural basis of protein folding and its links with human disease, Philos Trans R Soc Lond B, 356, 1406, pp. 133-145, (2001)
[10]  
Esler W.P., Stimson E.R., Jennings J.M., Vinters H.V., Ghilardi J.R., Lee J.P., Mantyh P.W., Maggio J.E., Alzheimer’s disease amyloid propagation by a template-dependent dock–lock mechanism, Biochemistry, 39, pp. 6288-6295, (2000)