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Updated: Feb 5, 2026

Growth Assays to Assess Polyglutamine Toxicity in Yeast
Published on: March 5, 2012
Natural Genetic Variation in Yeast Reveals That NEDD4 Is a Conserved Modifier of Mutant Polyglutamine Aggregation
Theodore W Peters1, Christopher S Nelson2, Akos A Gerencser2
1Buck Institute for Research on Aging, 8001 Redwood Blvd, Novato CA, 94945 robert.hughes.phd@gmail.com tpeters@alderbio.com.
Abstract:
A feature common to late onset proteinopathic disorders is an accumulation of toxic protein conformers and aggregates in affected tissues. In the search for potential drug targets, many studies used high-throughput screens to find genes that modify the cytotoxicity of misfolded proteins. A complement to this approach is to focus on strategies that use protein aggregation as a phenotypic readout to identify pathways that control aggregate formation and maintenance. Here we use natural variation between strains of budding yeast to genetically map loci that influence the aggregation of a polyglutamine-containing protein derived from a mutant form of huntingtin, the causative agent in Huntington disease. Linkage analysis of progeny derived from a cross between wild and laboratory yeast strains revealed two polymorphic loci that modify polyglutamine aggregation. One locus contains the gene RFU1 which modifies ubiquitination states of misfolded proteins targeted by the E3-ubiquitin ligase complex Rsp5 Activity of the Rsp5 complex, and the mammalian homolog NEDD4, are critical in maintaining protein homeostasis in response to proteomic stress. Our analysis also showed linkage of the aggregation phenotype to a distinct locus containing a gene encoding the Rsp5-interacting Bul2 protein. Allele-swap experiments validated the impact of both RFU1 and BUL2 on huntingtin aggregation. Furthermore, we found that the nematode Caenorhabditis elegans' ortholog of Rsp5, wwp-1, also negatively regulates polyglutamine aggregation. Knockdown of the NEDD4 in human cells likewise altered polyglutamine aggregation. Taken together, these results implicate conserved processes involving the ubiquitin regulation network that modify protein aggregation and provide novel therapeutic targets for polyglutamine and other protein folding diseases.
Insights
Researchers identified genes RFU1 and BUL2 in yeast that control the aggregation of toxic proteins linked to Huntington
Area of Science:
- Genetics
- Molecular Biology
- Neuroscience
Background:
- Proteinopathic disorders, such as Huntington's disease, are characterized by the accumulation of misfolded proteins.
- Identifying genetic factors that influence protein aggregation is crucial for understanding disease mechanisms and developing therapeutic targets.
Purpose of the Study:
- To identify genetic loci controlling polyglutamine protein aggregation using natural variation in budding yeast.
- To investigate the role of the ubiquitin-proteasome system in regulating protein aggregation.
Main Methods:
- Utilized linkage analysis in yeast strains to map genes influencing huntingtin protein aggregation.
- Performed allele-swap experiments to validate gene function.
- Examined orthologs in *Caenorhabditis elegans* and human cells to assess conserved mechanisms.
Main Results:
- Discovered two loci, containing RFU1 and BUL2, that significantly modify polyglutamine aggregation.
- RFU1 affects ubiquitination states of misfolded proteins via the Rsp5 E3 ubiquitin ligase complex.
- Conserved roles for Rsp5/NEDD4 and Bul2 in regulating protein aggregation were observed across species.
Conclusions:
- The ubiquitin regulation network plays a conserved role in controlling protein aggregation.
- RFU1, BUL2, and the Rsp5/NEDD4 complex represent potential therapeutic targets for protein folding diseases.
- This study provides a genetic framework for understanding and targeting protein aggregation disorders.
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