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Updated: May 20, 2026

Characterization of pH-Dependent Reversible Self-Assembly of Amyloid Beta 1-40-Coated Gold Colloids
Published on: March 21, 2025
The role of conformational flexibility in β2-microglobulin amyloid fibril formation at neutral pH
John P Hodkinson1, Sheena E Radford, Alison E Ashcroft
1Astbury Centre for Structural Molecular Biology, Institute of Molecular and Cellular Biology, Faculty of Biological Sciences, University of Leeds, Leeds, LS2 9JT, UK.
Rationale:
Amyloid formation is implicated in a number of human diseases. β(2)-Microglobulin (β(2)m) is the precursor protein in dialysis-related amyloidosis and it has been shown that partial, or more complete, unfolding is key to amyloid fibril formation in this pathology. Here the relationship between conformational flexibility and β(2)m amyloid formation at physiological pH has been investigated.
Methods:
HDX-ESI-MS was used to study the conformational dynamics of β(2)m. Protein engineering, or the addition of Cu(2+) ions, sodium dodecyl sulphate, trifluoroethanol, heparin, or protein stabilisers, was employed to perturb the conformational dynamics of β(2)m. The fibril-forming propensities of the protein variants and the wild-type protein in the presence of additives, which resulted in >5-fold increase in the EX1 rate of HDX, were investigated further.
Results:
ESI-MS revealed that HDX occurs via a mixed EX1/EX2 mechanism under all conditions. Urea denaturation and tryptophan fluorescence indicated that EX1 exchange occurred from a globally unfolded state in wild-type β(2)m. Although >30-fold increase in the HDX exchange rate was observed both for the protein variants and for the wild-type protein in the presence of specific additives, large increases in exchange rate did not necessarily result in extensive de novo fibril formation.
Conclusions:
The conformational dynamics measured by the EX1 rate of HDX do not predict the ability of β(2)m to form amyloid fibrils de novo at neutral pH. This suggests that the formation of amyloid fibrils from β(2)m at neutral pH is dependent on the generation of one or more specific aggregation-competent species which facilitate self-assembly.
Insights
Conformational flexibility, measured by hydrogen-deuterium exchange (HDX), does not predict amyloid fibril formation of beta(2)-microglobulin (β(2)m) at neutral pH. Specific aggregation-competent species, not just unfolding, drive β(2)m amyloidosis.
Area of Science:
- Biochemistry
- Molecular Biology
- Protein Misfolding Diseases
Background:
- Amyloid formation is linked to various human diseases.
- Dialysis-related amyloidosis involves beta(2)-microglobulin (β(2)m) precursor protein.
- Partial or complete unfolding of β(2)m is crucial for amyloid fibril formation.
Purpose of the Study:
- Investigate the link between conformational flexibility and β(2)m amyloid formation at physiological pH.
- Determine if conformational dynamics predict amyloidogenicity.
- Identify factors driving de novo fibril formation.
Main Methods:
- Hydrogen-deuterium exchange coupled with electrospray ionization mass spectrometry (HDX-ESI-MS) to study β(2)m dynamics.
- Protein engineering and use of additives (Cu(2+) ions, SDS, TFE, heparin, stabilizers) to perturb conformational dynamics.
- Assessing fibril-forming propensities of protein variants and wild-type β(2)m under various conditions.
Main Results:
- HDX followed a mixed EX1/EX2 mechanism under all tested conditions.
- EX1 exchange in wild-type β(2)m originated from a globally unfolded state.
- Increased HDX exchange rates (>30-fold) did not consistently lead to extensive de novo fibril formation.
Conclusions:
- The EX1 exchange rate of HDX does not predict the de novo amyloid fibril formation of β(2)m at neutral pH.
- Amyloid fibril formation from β(2)m at neutral pH depends on the generation of specific aggregation-competent species.
- These species are essential for initiating self-assembly into fibrils.
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