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Processing of Fluorescent Proteins May Prevent Detection of Prion Particles in [PSI+] Cells
Andrew G Matveenko1, Varvara E Ryzhkova1, Natalia A Zaytseva1
1Department of Genetics and Biotechnology, St. Petersburg State University, 199034 St. Petersburg, Russia.
Abstract:
Yeast is a convenient model for studying protein aggregation as it is known to propagate amyloid prions. [PSI+] is the prion form of the release factor eRF3 (Sup35). Aggregated Sup35 causes defects in termination of translation, which results in nonsense suppression in strains carrying premature stop codons. N-terminal and middle (M) domains of Sup35 are necessary and sufficient for maintaining [PSI+] in cells while preserving the prion strain's properties. For this reason, Sup35NM fused to fluorescent proteins is often used for [PSI+] detection and investigation. However, we found that in such chimeric constructs, not all fluorescent proteins allow the reliable detection of Sup35 aggregates. Particularly, transient overproduction of Sup35NM-mCherry resulted in a diffuse fluorescent pattern in the [PSI+] cells, while no loss of prions and no effect on the Sup35NM prion properties could be observed. This effect was reproduced in various unrelated strain backgrounds and prion variants. In contrast, Sup35NM fused to another red fluorescent protein, TagRFP-T, allowed the detection of [PSI+] aggregates. Analysis of protein lysates showed that Sup35NM-mCherry is actively degraded in the cell. This degradation was not caused by vacuolar proteases and the ubiquitin-proteasomal system implicated in the Sup35 processing. Even though the intensity of this proteolysis was higher than that of Sup35NM-GFP, it was roughly the same as in the case of Sup35NM-TagRFP-T. Thus, it is possible that, in contrast to TagRFP-T, degradation products of Sup35NM-mCherry still preserve their fluorescent properties while losing the ability to decorate pre-existing Sup35 aggregates. This results in diffuse fluorescence despite the presence of the prion aggregates in the cell. Thus, tagging with fluorescent proteins should be used with caution, as such proteolysis may increase the rate of false-negative results when detecting prion-bearing cells.
Insights
Fluorescent protein choice impacts yeast prion detection. Sup35NM-mCherry fusion proteins lead to false negatives due to degradation, hindering reliable [PSI+] prion visualization.
Area of Science:
- Molecular Biology
- Yeast Genetics
- Prion Biology
Background:
- Yeast serves as a model for protein aggregation and amyloid prion propagation.
- The [PSI+] prion is the prion form of the release factor eRF3 (Sup35), crucial for translation termination.
- Sup35 N-terminal and middle (M) domains (Sup35NM) are essential for maintaining [PSI+] and its strain properties.
Purpose of the Study:
- To investigate the reliability of fluorescent protein fusions for detecting Sup35 aggregates in yeast.
- To evaluate the impact of different fluorescent tags on Sup35NM prion propagation and visualization.
Main Methods:
- Constructing chimeric proteins of Sup35NM fused to fluorescent proteins (mCherry, TagRFP-T, GFP).
- Assessing prion detection and integrity in yeast strains with these fusions.
- Analyzing protein degradation pathways using protein lysates and protease inhibitors.
Main Results:
- Sup35NM-mCherry fusions resulted in diffuse fluorescence in [PSI+] cells, masking prion aggregates.
- Sup35NM-TagRFP-T fusions allowed reliable detection of Sup35 aggregates.
- Sup35NM-mCherry undergoes active degradation, independent of vacuolar or ubiquitin-proteasomal systems.
Conclusions:
- The choice of fluorescent tag is critical for accurate visualization of Sup35 prions.
- Degradation of Sup35NM-mCherry can lead to false-negative results in prion detection assays.
- Caution is advised when using fluorescently tagged proteins for prion research due to potential proteolysis issues.

