Early kinetics of amyloid fibril formation reveals conformational reorganisation of initial aggregates

被引:57
作者
Cerda-Costa, N.
Esteras-Chopo, A.
Aviles, F. X.
Serrano, L.
Villegas, V.
机构
[1] European Mol Biol Lab, D-69012 Heidelberg, Germany
[2] Univ Autonoma Barcelona, Dept Bioquim & Biol Mol, Cerdanyola Del Valles 08193, Spain
[3] Univ Autonoma Barcelona, Inst Biotecnol & Biomed, Cerdanyola Del Valles 08193, Spain
关键词
protein aggregation; kinetics; amyloid fibril; TANGO; peptides;
D O I
10.1016/j.jmb.2006.12.007
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Understanding the initial steps of protein aggregation leading to the formation of amyloid fibrils remains a challenge. Here, the kinetics of such a process is determined for a misfolding protein model, ADA2h. The double nature of the very early kinetics suggests a step model of aggregation, where the denatured polypeptide folds into an aggregated beta-intermediate that subsequently reorganises into a more organised beta-sheet-richer structure that finally results in amyloid fibre formation. To determine the regions of the protein involved in amyloidosis, we have analysed a series of mutants previously made to study ADA2h folding. Using the algorithm TANGO, we have designed mutants that should enhance or decrease aggregation. Experimental analysis of the mutants shows that the C terminus of the molecule (comprising the last and edge beta-strand) is the major contributor to amyloid fibril formation, in good agreement with theoretical predictions. Comparison with proteins with similar topology reveals that family folds do not necessarily share the same principles of protein folding and/or aggregation. (c) 2006 Published by Elsevier Ltd.
引用
收藏
页码:1351 / 1363
页数:13
相关论文
共 53 条
[1]   Instability, unfolding and aggregation of human lysozyme variants underlying amyloid fibrillogenesis [J].
Booth, DR ;
Sunde, M ;
Bellotti, V ;
Robinson, CV ;
Hutchinson, WL ;
Fraser, PE ;
Hawkins, PN ;
Dobson, CM ;
Radford, SE ;
Blake, CCF ;
Pepys, MB .
NATURE, 1997, 385 (6619) :787-793
[2]   H-1-NMR AND N-15-NMR ASSIGNMENT AND SOLUTION STRUCTURE OF THE CHEMOTACTIC ESCHERICHIA-COLI CHE Y-PROTEIN [J].
BRUIX, M ;
PASCUAL, J ;
SANTORO, J ;
PRIETO, J ;
SERRANO, L ;
RICO, M .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1993, 215 (03) :573-585
[3]   Inherent toxicity of aggregates implies a common mechanism for protein misfolding diseases [J].
Bucciantini, M ;
Giannoni, E ;
Chiti, F ;
Baroni, F ;
Formigli, L ;
Zurdo, JS ;
Taddei, N ;
Ramponi, G ;
Dobson, CM ;
Stefani, M .
NATURE, 2002, 416 (6880) :507-511
[4]   Reversal of protein aggregation provides evidence for multiple aggregated states [J].
Calamai, M ;
Canale, C ;
Relini, A ;
Stefani, M ;
Chiti, F ;
Dobson, CM .
JOURNAL OF MOLECULAR BIOLOGY, 2005, 346 (02) :603-616
[5]   Comparison of the folding processes of distantly related proteins. Importance of hydrophobic content in folding [J].
Calloni, G ;
Taddei, N ;
Plaxco, KW ;
Ramponi, G ;
Stefani, M ;
Chiti, F .
JOURNAL OF MOLECULAR BIOLOGY, 2003, 330 (03) :577-591
[6]   Protofibrils, pores, fibrils, and neurodegeneration: Separating the responsible protein aggregates from the innocent bystanders [J].
Caughey, B ;
Lansbury, PT .
ANNUAL REVIEW OF NEUROSCIENCE, 2003, 26 :267-298
[7]   Rationalization of the effects of mutations on peptide and protein aggregation rates [J].
Chiti, F ;
Stefani, M ;
Taddei, N ;
Ramponi, G ;
Dobson, CM .
NATURE, 2003, 424 (6950) :805-808
[8]  
Chiti F, 1999, NAT STRUCT BIOL, V6, P1005
[9]   Kinetic partitioning of protein folding and aggregation [J].
Chiti, F ;
Taddei, N ;
Baroni, F ;
Capanni, C ;
Stefani, M ;
Ramponi, G ;
Dobson, CM .
NATURE STRUCTURAL BIOLOGY, 2002, 9 (02) :137-143
[10]   Mutational analysis of the propensity for amyloid formation by a globular protein [J].
Chiti, F ;
Taddei, N ;
Bucciantini, M ;
White, P ;
Ramponi, G ;
Dobson, CM .
EMBO JOURNAL, 2000, 19 (07) :1441-1449