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Published on: April 2, 2015
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.
Abstract:
Misfolding and amyloid aggregation of human β2-microglobulin (β2m) have been linked to dialysis-related amyloidosis. Previous studies have shown that in the presence of different salt concentrations and at pH 2.5, β2m assembles into aggregates with distinct morphologies. However, the structural and mechanistic details of the aggregation of β2m, giving rise to different morphologies, are poorly understood. In this work, we have extensively characterized the salt-induced oligomers of the acid-unfolded state of β2m using an array of biophysical tools including steady-state and time-resolved fluorescence, circular dichroism, dynamic light scattering, and atomic force microscopy imaging. Fluorescence studies using the oligomer-sensitive molecular rotor, 4-(dicyanovinyl)-julolidine, in conjunction with the light scattering and cross-linking assay indicated that at low salt (NaCl) concentrations β2m exists as a disordered monomer, capable of transforming into ordered amyloid. In the presence of higher concentrations of salt, β2m aggregates into a larger oligomeric species that does not appear to transform into amyloid fibrils. Site-specific fluorescence experiments using single Trp variants of β2m revealed that the middle region of the protein is incorporated into these oligomers, whereas the C-terminal segment is highly exposed to bulk water. Additionally, stopped-flow kinetic experiments indicated that the formation of hydrophobic core and oligomerization occur concomitantly. Our results revealed the distinct pathways by which β2m assembles into oligomers and fibrils.
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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