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Silver ions as EM marker of congo red ligation sites in amyloids and amyloid-like aggregates
Author(s) -
Janina Rybarska,
Leszek Konieczny,
Anna Jagusiak,
Katarzyna Chłopaś,
Grzegorz Zemanek,
Barbara Piekarska,
Barbara Stopa,
Piotr Piwowar,
Olga Woźnicka,
Irena Roterman
Publication year - 2016
Publication title -
acta biochimica polonica
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.452
H-Index - 78
eISSN - 1734-154X
pISSN - 0001-527X
DOI - 10.18388/abp.2016_1393
Subject(s) - congo red , chemistry , amyloid (mycology) , ligand (biochemistry) , metal ions in aqueous solution , metal , amyloidosis , immunoglobulin light chain , protein aggregation , crystallography , biophysics , stereochemistry , biochemistry , adsorption , organic chemistry , biology , inorganic chemistry , medicine , receptor , pathology , antibody , immunology
Congo red (CR) is a known selective amyloid ligand. The focus of our work is identification (by EM imaging) of dye binding sites and their distribution in amyloids and amyloid-like aggregates formed in vitro. In order to produce the required contrast, CR has been indirectly combined with metal via including Titan yellow (TY) by intercalation which exhibits a relatively strong affinity for silver ions. The resulting combined ligand retains its ability to bind to proteins (which it owes to CR) and can easily be detected in EM studies thanks to TY. We have found, however, that in protein aggregates where unfolding is stabilized by aggregation and therefore is irreversible, TY alone may serve as both, the ligand and the metal carrier. The formation of ordered structures in amyloids was studied using IgG light chains with amyloidogenic properties, converted into amyloids by shaking. The resulting EM images were subjected to interpretation on the basis of the authors' earlier research on the CR/light chain complexation process. Our results indicate that dimeric light chains, which are the subject of our study, produce amyloids or amyloid-like complexes with chain-like properties and strong helicalization tendencies. Cursory analysis suggests that the edge polypeptide loops belonging to unstable light chains form intermolecular bridges which promote creation of loose gel deposits, or are otherwise engaged in the swapping processes leading to higher structural ordering.

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