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Updated: Apr 28, 2026

Atomic Scale Structural Studies of Macromolecular Assemblies by Solid-state Nuclear Magnetic Resonance Spectroscopy
Published on: September 17, 2017
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.
Abstract:
The [Het-s] prion of the fungus Podospora anserina represents a good model system for studying the structure-function relationship in amyloid proteins because a high resolution solid-state NMR structure of the amyloid prion form of the HET-s prion forming domain (PFD) is available. The HET-s PFD adopts a specific β-solenoid fold with two rungs of β-strands delimiting a triangular hydrophobic core. A C-terminal loop folds back onto the rigid core region and forms a more dynamic semi-hydrophobic pocket extending the hydrophobic core. Herein, an alanine scanning mutagenesis of the HET-s PFD was conducted. Different structural elements identified in the prion fold such as the triangular hydrophobic core, the salt bridges, the asparagines ladders and the C-terminal loop were altered and the effect of these mutations on prion function, fibril structure and stability was assayed. Prion activity and structure were found to be very robust; only a few key mutations were able to corrupt structure and function. While some mutations strongly destabilize the fold, many substitutions in fact increase stability of the fold. This increase in structural stability did not influence prion formation propensity in vivo. However, if an Ala replacement did alter the structure of the core or did influence the shape of the denaturation curve, the corresponding variant showed a decreased prion efficacy. It is also the finding that in addition to the structural elements of the rigid core region, the aromatic residues in the C-terminal semi-hydrophobic pocket are critical for prion propagation. Mutations in the latter region either positively or negatively affected prion formation. We thus identify a region that modulates prion formation although it is not part of the rigid cross-β core, an observation that might be relevant to other amyloid models.
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.
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