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Accurate determination of interstrand distances and alignment in amyloid fibrils by magic angle spinning NMR.


ABSTRACT: Amyloid fibrils are structurally ordered aggregates of proteins whose formation is associated with many neurodegenerative and other diseases. For that reason, their high-resolution structures are of considerable interest and have been studied using a wide range of techniques, notably electron microscopy, X-ray diffraction, and magic angle spinning (MAS) NMR. Because of the excellent resolution in the spectra, MAS NMR is uniquely capable of delivering site-specific, atomic resolution information about all levels of amyloid structure: (1) the monomer, which packs into several (2) protofilaments that in turn associate to form a (3) fibril. Building upon our high-resolution structure of the monomer of an amyloid-forming peptide from transthyretin (TTR(105-115)), we introduce single 1-(13)C labeled amino acids at seven different sites in the peptide and measure intermolecular carbonyl-carbonyl distances with an accuracy of ~0.11 A. Our results conclusively establish a parallel, in register, topology for the packing of this peptide into a ?-sheet and provide constraints essential for the determination of an atomic resolution structure of the fibril. Furthermore, the approach we employ, based on a combination of a double-quantum filtered variant of the DRAWS recoupling sequence and multispin numerical simulations in SPINEVOLUTION, is general and should be applicable to a wide range of systems.

SUBMITTER: Caporini MA 

PROVIDER: S-EPMC2959142 | biostudies-literature | 2010 Oct

REPOSITORIES: biostudies-literature

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Accurate determination of interstrand distances and alignment in amyloid fibrils by magic angle spinning NMR.

Caporini Marc A MA   Bajaj Vikram S VS   Veshtort Mikhail M   Fitzpatrick Anthony A   MacPhee Cait E CE   Vendruscolo Michele M   Dobson Christopher M CM   Griffin Robert G RG  

The journal of physical chemistry. B 20101001 42


Amyloid fibrils are structurally ordered aggregates of proteins whose formation is associated with many neurodegenerative and other diseases. For that reason, their high-resolution structures are of considerable interest and have been studied using a wide range of techniques, notably electron microscopy, X-ray diffraction, and magic angle spinning (MAS) NMR. Because of the excellent resolution in the spectra, MAS NMR is uniquely capable of delivering site-specific, atomic resolution information  ...[more]

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