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Title: Amyloid structure exhibits polymorphism on multiple length scales in human brain tissue

Journal Article · · Scientific Reports
DOI:https://doi.org/10.1038/srep33079· OSTI ID:1341005
 [1];  [2];  [3];  [3];  [2];  [2];  [2];  [1]
  1. Northeastern Univ., Boston, MA (United States)
  2. Massachusetts General Hospital, Boston, MA (United States)
  3. Argonne National Lab. (ANL), Argonne, IL (United States)

Although aggregation of Aβ amyloid fibrils into plaques in the brain is a hallmark of Alzheimer's Disease (AD), the correlation between amyloid burden and severity of symptoms is weak. One possible reason is that amyloid fibrils are structurally polymorphic and different polymorphs may contribute differentially to disease. However, the occurrence and distribution of amyloid polymorphisms in human brain is poorly documented. Here we seek to fill this knowledge gap by using X-ray microdiffraction of histological sections of human tissue to map the abundance, orientation and structural heterogeneities of amyloid within individual plaques; among proximal plaques and in subjects with distinct clinical histories. A 5 µ x-ray beam was used to generate diffraction data with each pattern arising from a scattering volume of only ~ 450 µ3 , making possible collection of dozens to hundreds of diffraction patterns from a single amyloid plaque. X-ray scattering from these samples exhibited all the properties expected for scattering from amyloid. Amyloid distribution was mapped using the intensity of its signature 4.7 Å reflection which also provided information on the orientation of amyloid fibrils across plaques. Margins of plaques exhibited a greater degree of orientation than cores and orientation around blood vessels frequently appeared tangential. Variation in the structure of Aβ fibrils is reflected in the shape of the 4.7 Å peak which usually appears as a doublet. Variations in this peak correspond to differences between the structure of amyloid within cores of plaques and at their periphery. Examination of tissue from a mismatch case - an individual with high plaque burden but no overt signs of dementia at time of death - revealed a diversity of structure and spatial distribution of amyloid that is distinct from typical AD cases. As a result, we demonstrate the existence of structural polymorphisms among amyloid within and among plaques of a single individual and suggest the existence of distinct differences in the organization of amyloid in subjects with different clinical presentations.

Research Organization:
Argonne National Laboratory (ANL), Argonne, IL (United States)
Sponsoring Organization:
USDOE Office of Science (SC), Basic Energy Sciences (BES). Scientific User Facilities Division; National Institutes of Health (NIH)
Grant/Contract Number:
AC02-06CH11357
OSTI ID:
1341005
Journal Information:
Scientific Reports, Vol. 6; ISSN 2045-2322
Publisher:
Nature Publishing GroupCopyright Statement
Country of Publication:
United States
Language:
English
Citation Metrics:
Cited by: 31 works
Citation information provided by
Web of Science

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Cited By (13)

Super‐Resolution Infrared Imaging of Polymorphic Amyloid Aggregates Directly in Neurons journal March 2020
Measurement of amyloid formation by turbidity assay—seeing through the cloud journal November 2016
Early Stage Alpha-Synuclein Amyloid Fibrils are Reservoirs of Membrane-Binding Species journal February 2019
Nanoscale structure of amyloid-β plaques in Alzheimer’s disease journal March 2019
Amyloid polymorphisms constitute distinct clouds of conformational variants in different etiological subtypes of Alzheimer’s disease journal November 2017
Parkinson’s disease is a type of amyloidosis featuring accumulation of amyloid fibrils of α-synuclein journal August 2019
X-ray diffraction reveals blunt-force loading threshold for nanoscopic structural change in ex vivo neuronal tissues journal January 2019
Fibril structure of amyloid-β(1–42) by cryo–electron microscopy journal September 2017
Imaging of neuronal tissues by x-ray diffraction and x-ray fluorescence microscopy: evaluation of contrast and biomarkers for neurodegenerative diseases journal January 2017
X-ray diffraction reveals blunt-force loading threshold for nanoscopic structural change in ex vivo neuronal tissues text January 2019
Mining Disaggregase Sequence Space to Safely Counter TDP-43, FUS, and α-Synuclein Proteotoxicity journal August 2019
Structure of amyloid β25–35 in lipid environment and cholesterol-dependent membrane pore formation journal February 2019
Bacillus subtilis HelD, an RNA Polymerase Interacting Helicase, Forms Amyloid-Like Fibrils journal August 2018