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Updated: Jan 23, 2026

Effect of Fluorescent Proteins on Fusion Partners Using Polyglutamine Toxicity Assays in Yeast
Published on: November 28, 2018
Engineered protein disaggregases mitigate toxicity of aberrant prion-like fusion proteins underlying sarcoma
Jeremy J Ryan1, Macy L Sprunger1, Kayla Holthaus1
1Department of Chemistry, Washington University, St. Louis, Missouri 63130.
Abstract:
FUS and EWSR1 are RNA-binding proteins with prion-like domains (PrLDs) that aggregate in amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD). The FUS and EWSR1 genes are also prone to chromosomal translocation events, which result in aberrant fusions between portions of the PrLDs of FUS and EWSR1 and the transcription factors CHOP and FLI. The resulting fusion proteins, FUS-CHOP and EWS-FLI, drive aberrant transcriptional programs that underpin liposarcoma and Ewing's sarcoma, respectively. The translocated PrLDs alter the expression profiles of these proteins and promote their phase separation and aggregation. Here, we report the development of yeast models of FUS-CHOP and EWS-FLI toxicity and aggregation. These models recapitulated several salient features of sarcoma patient cells harboring the FUS-CHOP and EWS-FLI translocations. To reverse FUS and EWSR1 aggregation, we have explored Hsp104, a hexameric AAA+ protein disaggregase from yeast. Previously, we engineered potentiated Hsp104 variants to suppress the proteotoxicity, aggregation, and mislocalization of FUS and other proteins that aggregate in ALS/FTD and Parkinson's disease. Potentiated Hsp104 variants that robustly suppressed FUS toxicity and aggregation also suppressed the toxicity and aggregation of FUS-CHOP and EWS-FLI. We suggest that these new yeast models are powerful platforms for screening for modulators of FUS-CHOP and EWS-FLI phase separation. Moreover, Hsp104 variants might be employed to combat the toxicity and phase separation of aberrant fusion proteins involved in sarcoma.
Insights
Yeast models of FUS-CHOP and EWS-FLI fusion proteins show that Hsp104 variants can reverse aggregation. These findings may lead to new sarcoma treatments targeting protein aggregation.
Area of Science:
- Molecular Biology
- Biochemistry
- Oncology
Background:
- FUS and EWSR1 proteins, crucial in ALS/FTD, possess prion-like domains (PrLDs) prone to aggregation.
- Chromosomal translocations involving FUS/EWSR1 genes create fusion proteins (FUS-CHOP, EWS-FLI) driving sarcoma development by altering transcription and promoting aggregation.
Purpose of the Study:
- To develop yeast models for studying FUS-CHOP and EWS-FLI toxicity and aggregation.
- To investigate the potential of yeast Hsp104 disaggregase variants in reversing FUS-CHOP and EWS-FLI aggregation and toxicity.
Main Methods:
- Development of yeast models expressing FUS-CHOP and EWS-FLI.
- Utilizing engineered Hsp104 variants, previously shown to mitigate protein aggregation in neurodegenerative diseases.
- Assessing the impact of Hsp104 variants on FUS-CHOP and EWS-FLI toxicity and aggregation within the yeast models.
Main Results:
- The developed yeast models successfully recapitulated key features of sarcoma cells with FUS-CHOP and EWS-FLI translocations.
- Engineered Hsp104 variants effectively suppressed both the toxicity and aggregation of FUS-CHOP and EWS-FLI.
- The study identified Hsp104 variants as potent suppressors of aberrant fusion protein aggregation.
Conclusions:
- Yeast models provide a robust platform for screening modulators of FUS-CHOP and EWS-FLI phase separation.
- Hsp104 variants show promise as a therapeutic strategy against sarcoma driven by aberrant fusion protein aggregation and phase separation.
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