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.

Abstract

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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