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Updated: Apr 25, 2026

High-throughput Screening for Protein-based Inheritance in S. cerevisiae
Published on: August 8, 2017
Amyloid diseases of yeast: prions are proteins acting as genes
Reed B Wickner1, Herman K Edskes1, David A Bateman1
1Laboratory of Biochemistry and Genetics, National Institute of Diabetes and Digestive and Kidney Diseases, National Institutes of Health, Bethesda, MD 20892-0830, U.S.A.
Abstract:
The unusual genetic properties of the non-chromosomal genetic elements [URE3] and [PSI+] led to them being identified as prions (infectious proteins) of Ure2p and Sup35p respectively. Ure2p and Sup35p, and now several other proteins, can form amyloid, a linear ordered polymer of protein monomers, with a part of each molecule, the prion domain, forming the core of this β-sheet structure. Amyloid filaments passed to a new cell seed the conversion of the normal form of the protein into the same amyloid form. The cell's phenotype is affected, usually from the deficiency of the normal form of the protein. Solid-state NMR studies indicate that the yeast prion amyloids are in-register parallel β-sheet structures, in which each residue (e.g. Asn35) forms a row along the filament long axis. The favourable interactions possible for aligned identical hydrophilic and hydrophobic residues are believed to be the mechanism for propagation of amyloid conformation. Thus, just as DNA mediates inheritance by templating its own sequence, these proteins act as genes by templating their conformation. Distinct isolates of a given prion have different biological properties, presumably determined by differences between the amyloid structures. Many lines of evidence indicate that the Saccharomyces cerevisiae prions are pathological disease agents, although the example of the [Het-s] prion of Podospora anserina shows that a prion can have beneficial aspects.
Insights
Yeast prions like [URE3] and [PSI+] are infectious proteins that form amyloid structures. These protein conformers act like genes, templating their structure to propagate and affect cell phenotype.
Area of Science:
- Molecular biology
- Biochemistry
- Genetics
Background:
- Non-chromosomal genetic elements [URE3] and [PSI+] are identified as prions, which are infectious proteins.
- Proteins like Ure2p and Sup35p can form amyloid structures, characterized by linear ordered polymers of protein monomers.
- Prion domains within these proteins form the core of the β-sheet structure in amyloids.
Purpose of the Study:
- To investigate the structural basis of yeast prion propagation.
- To understand how protein conformation is templated and inherited.
- To explore the biological implications and potential dual nature (pathological/beneficial) of prions.
Main Methods:
- Solid-state Nuclear Magnetic Resonance (NMR) spectroscopy was used to study yeast prion amyloids.
- Analysis of amyloid filament structures and their templating mechanisms.
Main Results:
- Yeast prion amyloids adopt in-register parallel β-sheet structures.
- Specific residue alignments (e.g., Asn35) form rows along the filament axis.
- Favorable interactions between aligned hydrophilic and hydrophobic residues drive conformational propagation.
Conclusions:
- Proteins can act as genetic elements by templating their conformation, analogous to DNA templating its sequence.
- Distinct prion isolates exhibit different biological properties due to variations in amyloid structure.
- While Saccharomyces cerevisiae prions are often pathological, other prions like [Het-s] can have beneficial roles.
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