Magic angle spinning NMR analysis of beta2-microglobulin amyloid fibrils in two distinct morphologies

Galia T Debelouchina1, Geoffrey W Platt, Marvin J Bayro

  • 1Department of Chemistry and Francis Bitter Magnet Laboratory, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.

Insights

Dialysis-related amyloidosis involves beta(2)-microglobulin (beta(2)m) fibrils. This study used MAS NMR to reveal structural differences between long straight and worm-like beta(2)m fibrils, linked to distinct molecular dynamics.

Area of Science:

  • Biophysics
  • Structural Biology
  • Biochemistry

Background:

  • Beta(2)-microglobulin (beta(2)m) forms amyloid fibrils in dialysis-related amyloidosis.
  • Previous structural studies focused on peptide fragments, leaving full-length beta(2)m fibril structures largely unknown.
  • Understanding beta(2)m fibril structure is crucial for dialysis-related amyloidosis.

Purpose of the Study:

  • To perform site-specific magic angle spinning (MAS) NMR analysis of full-length beta(2)m fibrils.
  • To compare the structures of beta(2)m fibrils formed under different conditions (pH 2.5 vs. pH 3.6).
  • To elucidate the molecular basis for distinct fibril morphologies.

Main Methods:

  • Site-specific magic angle spinning (MAS) NMR spectroscopy.
  • Preparation of beta(2)m fibrils under two distinct conditions: pH 2.5 (long straight, LS) and pH 3.6 (worm-like, WL).
  • High-resolution (13)C and (15)N resonance assignments for beta(2)m in LS fibrils.

Main Results:

  • Obtained resonance assignments for 64 residues of beta(2)m in LS fibrils, revealing a non-native beta-sheet core with trans-P32 conformation.
  • WL fibrils displayed greater dynamics and a smaller beta-sheet core compared to LS fibrils.
  • Identified shared structural elements between the beta-sheet cores of both LS and WL fibrils.

Conclusions:

  • Distinct macroscopic fibril morphologies (LS vs. WL) arise from variations in molecular structure and dynamics.
  • The study provides novel structural insights into full-length beta(2)m amyloid fibrils.
  • Findings contribute to understanding the molecular mechanisms of dialysis-related amyloidosis.