Structure, function, and amyloidogenesis of fungal prions: filament polymorphism and prion variants

Ulrich Baxa1, Todd Cassese, Andrey V Kajava

  • 1Laboratory of Structural Biology, National Institute of Arthritis, Musculoskeletal, and Skin Diseases, National Institutes of Health, Bethesda, Maryland 20892, USA.

Insights

Prions, infectious proteins, can convert normal proteins into infectious forms through autocatalysis. Fungal prion research reveals prion domains polymerize into amyloid filaments, influencing protein activity and creating variants.

Area of Science:

  • Molecular Biology
  • Biochemistry
  • Structural Biology

Background:

  • Prions are infectious proteins implicated in transmissible spongiform encephalopathies.
  • Fungal prions offer greater experimental tractability for studying prion biology.
  • Prion proteins convert from a normal to an infectious form via autocatalysis.

Purpose of the Study:

  • To review evidence on fungal prion structure and conversion mechanisms.
  • To summarize experimental constraints and evaluate proposed models for prion formation.
  • To explore the structural basis of prion variants and their phenotypic differences.

Main Methods:

  • Review of existing experimental data on fungal prion proteins (Ure2p, Sup35p, Rnq1p, HET-s).
  • Emphasis on prion domain polymerization into amyloid filaments.
  • Analysis of electron microscopy data for Ure2p-related constructs.

Main Results:

  • Prion domains polymerize into amyloid filaments (cross-beta structure) during conversion.
  • Parallel superpleated beta-structure and beta-helical formulations are plausible structures.
  • Amyloid filament polymorphism in Ure2p and Sup35p systems underlies prion variants.

Conclusions:

  • Prion conversion involves a conformational switch in the prion domain to an amyloid state.
  • Specific amyloid structures, like parallel superpleated beta-structures, are favored.
  • Filament polymorphism, primarily in the prion domain, explains the diversity of prion phenotypes.

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