Exploring amyloid formation by a de novo design
Author(s) -
Richard A. Kammerer,
Dirk Kostrewa,
Jesús Zurdo,
A. Detken,
Carlos Garcı́a-Echeverrı́a,
Janelle D. Green,
Shirley A. Müller,
Beat H. Meier,
Fritz K. Winkler,
Christopher M. Dobson,
Michel O. Steinmetz
Publication year - 2004
Publication title -
proceedings of the national academy of sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.0306786101
Subject(s) - amyloid (mycology) , coiled coil , kinetics , peptide , biophysics , fibril , amyloid fibril , sequence (biology) , chemistry , molecular dynamics , peptide sequence , protein structure , biochemistry , biology , amyloid β , disease , medicine , physics , computational chemistry , gene , pathology , quantum mechanics , inorganic chemistry
Protein deposition as amyloid fibrils underlies many debilitating human disorders. The complexity and size of disease-related polypeptides, however, often hinders a detailed rational approach to study effects that contribute to the process of amyloid formation. We report here a simplified peptide sequence successfully designed de novo to fold into a coiled-coil conformation under ambient conditions but to transform into amyloid fibrils at elevated temperatures. We have determined the crystal structure of the coiled-coil form and propose a detailed molecular model for the peptide in its fibrillar state. The relative stabilities of the two structural forms and the kinetics of their interconversion were found to be highly sensitive to small sequence changes. The results reveal the importance of specific packing interactions on the kinetics of amyloid formation and show the potential of this exceptionally favorable system for probing details of the molecular origins of amyloid disease.
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