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Updated: Jul 17, 2026

High-throughput Screening for Protein-based Inheritance in S. cerevisiae
Published on: August 8, 2017
Prion species barrier between the closely related yeast proteins is detected despite coaggregation
Buxin Chen1, Gary P Newnam, Yury O Chernoff
1School of Biology and Institute for Bioengineering and Bioscience, Georgia Institute of Technology, 310 Ferst Drive, Atlanta, GA 30332-0230, USA.
Abstract:
Prions are self-perpetuating and, in most cases, aggregation-prone protein isoforms that transmit neurodegenerative diseases in mammals and control heritable traits in yeast. Prion conversion requires a very high level of identity of the interacting protein sequences. Decreased transmission of the prion state between divergent proteins is termed "species barrier" and was thought to occur because of the inability of divergent prion proteins to coaggregate. Species barrier can be overcome in cross-species infections, e.g., from "mad cows" to humans. We studied the counterparts of yeast prion protein Sup35, originated from three different species of the Saccharomyces sensu stricto group and exhibiting the range of prion domain divergence that overlaps with the range of divergence observed among distant mammalian species. All three proteins were capable of forming a prion in Saccharomyces cerevisiae, although prions formed by heterologous proteins were usually less stable than the endogenous S. cerevisiae prion. Heterologous Sup35 proteins coaggregated in the S. cerevisiae cells. However, in vivo cross-species prion conversion was decreased and in vitro polymerization was cross-inhibited in at least some heterologous combinations, thus demonstrating the existence of prion species barrier. Moreover, the barrier between the S. cerevisiae protein and its Saccharomyces paradoxus and Saccharomyces bayanus counterparts was asymmetric both in vivo and in vitro. Our data show that a decreased cross-species prion transmission does not necessarily correlate with a lack of cross-species coaggregation, suggesting that species-specificity of prion transmission is controlled at the level of conformational transition rather than coaggregation.
Insights
Prion transmission between species, or the "species barrier," is not solely due to protein coaggregation. Conformational changes, not coaggregation, appear to control prion specificity across species.
Area of Science:
- Molecular Biology
- Protein Biochemistry
- Yeast Genetics
Background:
- Prions are protein isoforms causing neurodegenerative diseases and heritable traits.
- Prion transmission, the "species barrier," typically requires high sequence identity.
- Coaggregation failure was previously thought to cause the species barrier.
Purpose of the Study:
- To investigate the role of coaggregation in the prion species barrier.
- To analyze prion transmission and stability using divergent yeast Sup35 proteins.
- To determine if cross-species prion conversion correlates with coaggregation.
Main Methods:
- Studied Saccharomyces sensu stricto Sup35 protein variants.
- Assessed prion formation and stability in Saccharomyces cerevisiae.
- Evaluated in vivo cross-species prion conversion and in vitro polymerization.
Main Results:
- All heterologous Sup35 proteins formed prions in S. cerevisiae, though less stable.
- Heterologous Sup35 proteins coaggregated in vivo.
- Cross-species prion conversion and polymerization were reduced, demonstrating a species barrier, which was asymmetric.
Conclusions:
- Prion species barrier does not strictly correlate with coaggregation ability.
- Cross-species prion transmission is likely regulated by conformational transitions, not coaggregation.
- Species-specificity in prion transmission is determined at the level of conformational change.
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