Characterization of Salt-Induced Oligomerization of Human β2-Microglobulin at Low pH

Dominic Narang1, Anubhuti Singh1, Hema M Swasthi1

  • 1Centre for Protein Science, Design and Engineering, Department of Biological Sciences and ‡Department of Chemical Sciences, Indian Institute of Science Education and Research (IISER) , Mohali, Knowledge City, Sector 81, S.A.S. Nagar, Mohali 140306, Punjab, India.

Insights

Human beta2-microglobulin (β2m) aggregation pathways differ based on salt concentration. High salt forms non-amyloid oligomers, while low salt promotes amyloid fibril formation, impacting dialysis-related amyloidosis.

Area of Science:

  • Biochemistry
  • Protein Misfolding
  • Amyloidogenesis

Background:

  • Human beta2-microglobulin (β2m) misfolding and aggregation are implicated in dialysis-related amyloidosis.
  • Previous research indicates β2m forms distinct aggregates at pH 2.5 under varying salt conditions.
  • The precise structural and mechanistic details of β2m aggregation remain unclear.

Purpose of the Study:

  • To extensively characterize salt-induced oligomers of acid-unfolded β2m.
  • To elucidate the distinct aggregation pathways of β2m leading to oligomers and fibrils.

Main Methods:

  • Steady-state and time-resolved fluorescence spectroscopy (using 4-(dicyanovinyl)-julolidine)
  • Circular dichroism
  • Dynamic light scattering
  • Cross-linking assays
  • Atomic force microscopy
  • Site-specific fluorescence on single Trp variants
  • Stopped-flow kinetics

Main Results:

  • At low NaCl concentrations, β2m forms disordered monomers that can transition to amyloid.
  • Higher salt concentrations induce aggregation into larger oligomeric species, not progressing to amyloid fibrils.
  • Site-specific fluorescence shows the β2m middle region is in oligomers, with the C-terminus exposed.
  • Hydrophobic core formation and oligomerization occur simultaneously.

Conclusions:

  • Distinct aggregation pathways for β2m oligomers and fibrils are revealed.
  • Salt concentration is a critical determinant of β2m aggregation morphology.
  • Understanding these pathways offers insights into dialysis-related amyloidosis mechanisms.

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