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Flexibility of the murine prion protein and its Asp178Asn mutant investigated by molecular dynamics simulations

J Gsponer1, P Ferrara, A Caflisch

  • 1Department of Biochemistry, University of Zürich, Switzerland.

Insights

Inherited prion diseases link to prion protein mutations. Simulations show the Asp178Asn mutation does not significantly destabilize prion protein structure, challenging existing hypotheses.

Area of Science:

  • Neuroscience
  • Molecular Biology
  • Biochemistry

Background:

  • Inherited transmissible spongiform encephalopathies (TSEs) like Creutzfeldt-Jakob disease are linked to prion protein (PrP) mutations.
  • The Asp178Asn (D178N) mutation is implicated in TSEs, with hypotheses suggesting it destabilizes PrP structure by disrupting the Arg164-Asp178 salt bridge.

Purpose of the Study:

  • To investigate the structural impact of the Asp178Asn (D178N) mutation on the prion protein.
  • To determine if the loss of the Arg164-Asp178 salt bridge contributes to prion protein destabilization.

Main Methods:

  • Molecular dynamics simulations of the structured C-terminal domain of murine prion protein (wild type and D178N mutant).
  • Analysis of structural deviations and fluctuations compared to NMR conformation.
  • Comparison with Circular Dichroism (CD) spectroscopy and hydrogen exchange data.

Main Results:

  • The D178N mutant showed minimal deviation from the wild-type NMR conformation on the nanosecond timescale.
  • No major structural rearrangements were observed, except for a slight N-terminal elongation of helix 2.
  • The disulfide bridge region remained stable, while ill-defined segments and helix 1 exhibited increased flexibility.

Conclusions:

  • The dynamic behavior of the D178N mutant suggests it does not significantly destabilize the prion protein structure.
  • The Arg164-Asp178 salt bridge may not be critical for maintaining prion protein stability.

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