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High-throughput Screening for Protein-based Inheritance in S. cerevisiae
Published on: August 8, 2017
Molecular basis for transmission barrier and interference between closely related prion proteins in yeast
Evgenia G Afanasieva1, Vitaly V Kushnirov, Mick F Tuite
1Cardiology Research Center, Moscow, Russia.
Abstract:
Replicating amyloids, called prions, are responsible for transmissible neurodegenerative diseases in mammals and some heritable phenotypes in fungi. The transmission of prions between species is usually inhibited, being highly sensitive to small differences in amino acid sequence of the prion-forming proteins. To understand the molecular basis of this prion interspecies barrier, we studied the transmission of the [PSI(+)] prion state from Sup35 of Saccharomyces cerevisiae to hybrid Sup35 proteins with prion-forming domains from four other closely related Saccharomyces species. Whereas all the hybrid Sup35 proteins could adopt a prion form in S. cerevisiae, they could not readily acquire the prion form from the [PSI(+)] prion of S. cerevisiae. Expression of the hybrid Sup35 proteins in S. cerevisiae [PSI(+)] cells often resulted in frequent loss of the native [PSI(+)] prion. Furthermore, all hybrid Sup35 proteins showed different patterns of interaction with the native [PSI(+)] prion in terms of co-polymerization, acquisition of the prion state, and induced prion loss, all of which were also dependent on the [PSI(+)] variant. The observed loss of S. cerevisiae [PSI(+)] can be related to inhibition of prion polymerization of S. cerevisiae Sup35 and formation of a non-heritable form of amyloid. We have therefore identified two distinct molecular origins of prion transmission barriers between closely sequence-related prion proteins: first, the inability of heterologous proteins to co-aggregate with host prion polymers, and second, acquisition by these proteins of a non-heritable amyloid fold.
Insights
Prions, or self-replicating amyloids, cause diseases. Interspecies prion transmission barriers arise from proteins
Area of Science:
- Molecular Biology
- Protein Biochemistry
- Prion Biology
Background:
- Prions are self-templating proteins responsible for transmissible neurodegenerative diseases in mammals and heritable traits in fungi.
- Interspecies prion transmission is typically blocked due to sequence-specific interactions of prion proteins.
Purpose of the Study:
- To investigate the molecular basis of prion transmission barriers between closely related Saccharomyces species.
- To understand how sequence variations in Sup35 proteins affect prion acquisition and propagation.
Main Methods:
- Studied the [PSI(+)] prion state transmission from Saccharomyces cerevisiae Sup35 to hybrid Sup35 proteins from related species.
- Analyzed co-polymerization, prion acquisition, and prion loss in yeast expressing hybrid Sup35 proteins.
- Assessed interactions with different [PSI(+)] variants.
Main Results:
- Hybrid Sup35 proteins could form prions but struggled to acquire the [PSI(+)] state from S. cerevisiae.
- Expression of hybrid proteins often led to loss of the native [PSI(+)] prion.
- Observed varied interactions, including inhibition of prion polymerization and formation of non-heritable amyloid forms.
Conclusions:
- Identified two key barriers to prion transmission: inability of heterologous proteins to co-aggregate with host prion polymers and acquisition of non-heritable amyloid folds.
- These barriers are crucial for understanding prion specificity even between closely related proteins.
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