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Atomic Details of the Interactions of Glycosaminoglycans with Amyloid-β Fibrils
Author(s) -
Katie L. Stewart,
Eleri Hughes,
Edwin A. Yates,
Geoffrey R. Akien,
TengYi Huang,
Marcelo A. Lima,
Timothy R. Rudd,
Marco Guerrini,
ShangCheng Hung,
Sheena E. Radford,
David A. Middleton
Publication year - 2016
Publication title -
journal of the american chemical society
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 7.115
H-Index - 612
eISSN - 1520-5126
pISSN - 0002-7863
DOI - 10.1021/jacs.6b02816
Subject(s) - chemistry , fibril , biophysics , glycosaminoglycan , amyloid (mycology) , solid state nuclear magnetic resonance , nuclear magnetic resonance spectroscopy , crystallography , stereochemistry , biochemistry , nuclear magnetic resonance , inorganic chemistry , physics , biology
The amyloid plaques associated with Alzheimer's disease (AD) comprise fibrillar amyloid-β (Aβ) peptides as well as non-protein factors including glycosaminoglycan (GAG) polysaccharides. GAGs affect the kinetics and pathway of Aβ self-assembly and can impede fibril clearance; thus, they may be accessory molecules in AD. Here we report the first high-resolution details of GAG-Aβ fibril interactions from the perspective of the saccharide. Binding analysis indicated that the GAG proxy heparin has a remarkably high affinity for Aβ fibrils with 3-fold cross-sectional symmetry (3Q). Chemical synthesis of a uniformly (13)C-labeled octasaccharide heparin analogue enabled magic-angle spinning solid-state NMR of the GAG bound to 3Q fibrils, and measurements of dynamics revealed a tight complex in which all saccharide residues are restrained without undergoing substantial conformational changes. Intramolecular (13)C-(15)N dipolar dephasing is consistent with close (<5 Å) contact between GAG anomeric position(s) and one or more histidine residues in the fibrils. These data provide a detailed model for the interaction between 3Q-seeded Aβ40 fibrils and a major non-protein component of AD plaques, and they reveal that GAG-amyloid interactions display a range of affinities that critically depend on the precise details of the fibril architecture.

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