Contribution of specific residues of the β-solenoid fold to HET-s prion function, amyloid structure and stability

Asen Daskalov1, Matthias Gantner2, Marielle Aulikki Wälti2

  • 1Institut de Biochimie et de Génétique Cellulaire, Unité Mixte de Recherche 5095, Centre National de la Recherche Scientifique Université de Bordeaux, Bordeaux, France.

Plos Pathogens
|June 20, 2014
PubMed

Insights

The HET-s prion protein in Podospora anserina is a robust amyloid model. Key mutations in its structure affect prion function and stability, with aromatic residues in a C-terminal pocket being critical for propagation.

Area of Science:

  • Biochemistry
  • Structural Biology
  • Mycology

Background:

  • The [Het-s] prion of Podospora anserina serves as a model for amyloid protein structure-function studies.
  • A high-resolution solid-state NMR structure of the HET-s prion forming domain (PFD) reveals a β-solenoid fold with a hydrophobic core and a C-terminal loop.

Purpose of the Study:

  • To investigate the structure-function relationship of the HET-s prion forming domain (PFD) using alanine scanning mutagenesis.
  • To assess the impact of mutations on prion function, fibril structure, and stability.

Main Methods:

  • Alanine scanning mutagenesis of the HET-s PFD was performed.
  • Mutations targeted key structural elements including the hydrophobic core, salt bridges, asparagine ladders, and the C-terminal loop.
  • Prion activity, fibril structure, stability, and denaturation curves were assayed.

Main Results:

  • The HET-s prion fold is highly robust, with only a few mutations significantly disrupting structure and function.
  • Many substitutions increased fold stability without affecting in vivo prion formation.
  • Mutations altering the core structure or denaturation curve shape decreased prion efficacy.
  • Aromatic residues in the C-terminal semi-hydrophobic pocket were found to be critical for prion propagation.

Conclusions:

  • The HET-s prion fold exhibits remarkable robustness.
  • Structural stability does not directly correlate with prion formation propensity in vivo.
  • The C-terminal semi-hydrophobic pocket, beyond the rigid core, plays a crucial role in modulating prion formation and propagation.
  • These findings may have implications for understanding other amyloid systems.