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Updated: May 1, 2026

Atomic Scale Structural Studies of Macromolecular Assemblies by Solid-state Nuclear Magnetic Resonance Spectroscopy
Published on: September 17, 2017
Secondary structure in the core of amyloid fibrils formed from human β₂m and its truncated variant ΔN6
Yongchao Su1, Claire J Sarell, Matthew T Eddy
1Department of Chemistry and Francis Bitter Magnet Laboratory, Massachusetts Institute of Technology Cambridge, Massachusetts 02139, United States.
Abstract:
Amyloid fibrils formed from initially soluble proteins with diverse sequences are associated with an array of human diseases. In the human disorder, dialysis-related amyloidosis (DRA), fibrils contain two major constituents, full-length human β2-microglobulin (hβ2m) and a truncation variant, ΔN6 which lacks the N-terminal six amino acids. These fibrils are assembled from initially natively folded proteins with an all antiparallel β-stranded structure. Here, backbone conformations of wild-type hβ2m and ΔN6 in their amyloid forms have been determined using a combination of dilute isotopic labeling strategies and multidimensional magic angle spinning (MAS) NMR techniques at high magnetic fields, providing valuable structural information at the atomic-level about the fibril architecture. The secondary structures of both fibril types, determined by the assignment of ~80% of the backbone resonances of these 100- and 94-residue proteins, respectively, reveal substantial backbone rearrangement compared with the location of β-strands in their native immunoglobulin folds. The identification of seven β-strands in hβ2m fibrils indicates that approximately 70 residues are in a β-strand conformation in the fibril core. By contrast, nine β-strands comprise the fibrils formed from ΔN6, indicating a more extensive core. The precise location and length of β-strands in the two fibril forms also differ. The results indicate fibrils of ΔN6 and hβ2m have an extensive core architecture involving the majority of residues in the polypeptide sequence. The common elements of the backbone structure of the two proteins likely facilitates their ability to copolymerize during amyloid fibril assembly.
Insights
Amyloid fibrils in dialysis-related amyloidosis involve human β2-microglobulin (hβ2m) and a variant (ΔN6). Their atomic-level structures reveal extensive β-strand cores, explaining how these proteins assemble into disease-associated amyloid fibrils.
Area of Science:
- Biochemistry
- Structural Biology
- Biophysics
Background:
- Amyloid fibrils, implicated in various human diseases, are formed from soluble proteins.
- Dialysis-related amyloidosis (DRA) involves amyloid fibrils composed of full-length human β2-microglobulin (hβ2m) and a truncated variant (ΔN6).
- These fibrils assemble from natively folded proteins into an antiparallel β-stranded structure.
Purpose of the Study:
- To determine the backbone conformations of wild-type hβ2m and ΔN6 in their amyloid forms.
- To provide atomic-level structural insights into the architecture of amyloid fibrils associated with DRA.
- To understand the structural basis for the copolymerization of hβ2m and ΔN6.
Main Methods:
- Utilized dilute isotopic labeling strategies.
- Employed multidimensional magic angle spinning (MAS) NMR techniques at high magnetic fields.
- Assigned approximately 80% of backbone resonances for both 100-residue hβ2m and 94-residue ΔN6 proteins.
Main Results:
- Identified substantial backbone rearrangement compared to native immunoglobulin folds.
- Determined seven β-strands in hβ2m fibrils, comprising ~70 residues in the fibril core.
- Found nine β-strands in ΔN6 fibrils, indicating a more extensive fibril core with differing β-strand locations and lengths.
Conclusions:
- Amyloid fibrils of hβ2m and ΔN6 possess extensive core architectures involving the majority of residues.
- Common structural elements in the backbone likely facilitate copolymerization during fibril assembly.
- These findings offer critical atomic-level structural information on DRA-associated amyloid fibril architecture.
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