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.

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.