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PMID: 10350460 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Mechanistic studies of the folding of human lysozyme and the origin of amyloidogenic behavior in its disease-related variants.

Biochemistry ·Vol. 38 ·No. 20 ·1999-05-18 ·Pages 6419-27

Canet D, Sunde M, Last AM, Miranker A, Spencer A, Robinson CV, Dobson CM

Abstract

The unfolding and refolding properties of human lysozyme and two amyloidogenic variants (Ile56Thr and Asp67His) have been studied by stopped-flow fluorescence and hydrogen exchange pulse labeling coupled with mass spectrometry. The unfolding of each protein in 5.4 M guanidine hydrochloride (GuHCl) is well described as a two-state process, but the rates of unfolding of the Ile56Thr variant and the Asp67His variant in 5.4 M GuHCl are ca. 30 and 160 times greater, respectively, than that of the wild type. The refolding of all three proteins in 0.54 M GuHCl at pH 5.0 proceeds through persistent intermediates, revealed by multistep kinetics in fluorescence experiments and by the detection of well-defined populations in quenched-flow hydrogen exchange experiments. These findings are consistent with a predominant mechanism for refolding of human lysozyme in which one of the structural domains (the alpha-domain) is formed in two distinct steps and is followed by the folding of the other domain (the beta-domain) prior to the assembly of the two domains to form the native structure. The refolding kinetics of the Asp67His variant are closely similar to those of the wild-type protein, consistent with the location of this mutation in an outer loop of the beta-domain which gains native structure only toward the end of the refolding process. By contrast, the Ile56Thr mutation is located at the base of the beta-domain and is involved in the domain interface. The refolding of the alpha-domain is unaffected by this substitution, but the latter has the effect of dramatically slowing the folding of the beta-domain and the final assembly of the native structure. These studies suggest that the amyloidogenic nature of the lysozyme variants arises from a decrease in the stability of the native fold relative to partially folded intermediates. The origin of this instability is different in the two variants, being caused in one case primarily by a reduction in the folding rate and in the other by an increase in the unfolding rate. In both cases this results in a low population of soluble partially folded species that can aggregate in a slow and controlled manner to form amyloid fibrils.

MeSH Terms
Amyloid/chemistry,genetics,metabolism Amyloidosis/etiology,genetics,metabolism Aspartic Acid/genetics Histidine/genetics Humans Isoleucine/genetics Kinetics Mass Spectrometry Models, Molecular Muramidase/chemistry,genetics,metabolism Protein Folding Protons Recombinant Proteins/chemistry,genetics,metabolism Spectrometry, Fluorescence Threonine/genetics
Chemicals
Amyloid Protons Recombinant Proteins Isoleucine Threonine Aspartic Acid Histidine Muramidase
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Canet D
Oxford Centre for Molecular Sciences, University of Oxford, New Chemistry Laboratory, UK.
Sunde M
Last A M
Miranker A
Spencer A
Robinson C V
Dobson C M
Article Info
Journal
Biochemistry
Abbr.
Biochemistry
ISSN
0006-2960
Published
1999-05-18
Pages
6419-27
Language
English
Region
United States
NLM ID
0370623
Subset
IM
Grants
Wellcome Trust · United Kingdom
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