Conformational flexibility of Y145Stop human prion protein amyloid fibrils probed by solid-state nuclear magnetic

Jonathan J Helmus1, Krystyna Surewicz, Witold K Surewicz

  • 1Department of Chemistry, The Ohio State University, Columbus, Ohio 43210, USA.

Insights

The N-terminal domain of human prion protein (huPrP23-144) amyloid is flexible and random-coil-like. Core residues exhibit restricted motion, but some slow dynamics within the amyloid core suggest potential chemical exchange phenomena.

Area of Science:

  • Biophysics
  • Structural Biology
  • Neuroscience

Background:

  • Amyloid aggregates of a C-truncated human prion protein (huPrP23-144) mutant are linked to heritable amyloid angiopathy.
  • These aggregates feature a rigid, beta-sheet-rich amyloid core near the C-terminus.
  • The N-terminal residues of huPrP23-144 exhibit significant conformational flexibility.

Purpose of the Study:

  • To directly observe and characterize the flexible N-terminal domain of huPrP23-144 amyloid.
  • To investigate potential molecular motions within the amyloid core of huPrP23-144.
  • To quantitatively measure dynamics of core residues using solid-state NMR (SSNMR).

Main Methods:

  • 2D J-coupling-based magic-angle spinning (MAS) SSNMR techniques were employed.
  • Cross-polarization (CP)-based 3D SSNMR spectra were analyzed for signal intensities.
  • Backbone dipolar order parameters and transverse spin relaxation rates were quantitatively measured for core residues.

Main Results:

  • The N-terminal domain of huPrP23-144 amyloid was directly observed, showing random-coil-like conformations.
  • Core residues demonstrated restricted, uniform motions on the submicrosecond timescale, similar to microcrystalline proteins.
  • Variations in transverse relaxation rates within the core suggest slow, microsecond-millisecond timescale chemical exchange phenomena.

Conclusions:

  • The N-terminal domain of huPrP23-144 amyloid is highly flexible.
  • While the amyloid core is largely rigid, evidence suggests slow molecular motions and potential chemical exchange within this region.
  • These findings provide insights into the dynamic nature of prion protein amyloid structures.

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