Authors
Chuang-Chung Lee, Arpan Nayak, Ananthakrishnan Sethuraman, Georges Belfort, Gregory J McRae
Publication date
2007/5/15
Journal
Biophysical journal
Volume
92
Issue
10
Pages
3448-3458
Publisher
Elsevier
Description
Amyloid fibrillation has been intensively studied because of its association with various neurological disorders. While extensive time-dependent fibrillation experimental data are available and appear similar, few mechanistic models have been developed to unify those results. The aim of this work was to interpret these experimental results via a rigorous mathematical model that incorporates the physical chemistry of nucleation and fibril growth dynamics. A three-stage mechanism consisting of protein misfolding, nucleation, and fibril elongation is proposed and supported by the features of homogeneous fibrillation responses. Estimated by nonlinear least-squares algorithms, the rate constants for nucleation were ∼10,000,000 times smaller than those for fibril growth. These results, coupled with the positive feedback characteristics of the elongation process, account for the typical sigmoidal behavior during fibrillation …
Total citations
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Scholar articles
CC Lee, A Nayak, A Sethuraman, G Belfort, GJ McRae - Biophysical journal, 2007