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Efficient and Scalable Production of Full-length Human Huntingtin Variants in Mammalian Cells using a Transient Expression System
Published on: December 10, 2021
Huntingtin interacting proteins are genetic modifiers of neurodegeneration
Linda S Kaltenbach1, Eliana Romero, Robert R Becklin
1Prolexys Pharmaceuticals, Salt Lake City, Utah, United States of America.
Insights
Researchers identified proteins interacting with the huntingtin (Htt) protein to find genetic modifiers for Huntington's disease (HD) neurodegeneration. This approach yielded a high success rate, revealing potential therapeutic targets for this fatal condition.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- Huntington's disease (HD) is a fatal neurodegenerative disorder.
- It is caused by a polyglutamine tract expansion in the huntingtin (Htt) protein.
- Neuronal toxicity in HD is linked to interactions involving mutant Htt.
Purpose of the Study:
- To identify genetic modifiers of HD neurodegeneration.
- To test the hypothesis that Htt protein interactors are enriched for genetic modifiers.
- To discover potential therapeutic targets for HD.
Main Methods:
- Identified Htt interactors using high-throughput yeast two-hybrid screening and affinity pull-down/mass spectrometry.
- Validated genetic modifiers in a Drosophila model of HD.
- Tested co-immunoprecipitation of interacting proteins with full-length Htt from mouse brain.
Main Results:
- Identified 234 high-confidence Htt-associated proteins.
- Discovered that 27 out of 60 tested interactors (45%) were high-confidence genetic modifiers of neurodegeneration.
- Found modifiers involved in diverse functions like synaptic transmission, cytoskeletal organization, signal transduction, and transcription.
- Identified 17 loss-of-function suppressors of neurodegeneration among modifiers.
Conclusions:
- High-throughput screening for protein interactions combined with genetic validation is a powerful method for identifying HD modifiers.
- This approach significantly increases the hit rate for discovering genetic modifiers compared to unbiased screens.
- Identified interacting proteins, particularly loss-of-function suppressors, represent promising targets for therapeutic intervention in Huntington's disease.
Abstract:
Huntington's disease (HD) is a fatal neurodegenerative condition caused by expansion of the polyglutamine tract in the huntingtin (Htt) protein. Neuronal toxicity in HD is thought to be, at least in part, a consequence of protein interactions involving mutant Htt. We therefore hypothesized that genetic modifiers of HD neurodegeneration should be enriched among Htt protein interactors. To test this idea, we identified a comprehensive set of Htt interactors using two complementary approaches: high-throughput yeast two-hybrid screening and affinity pull down followed by mass spectrometry. This effort led to the identification of 234 high-confidence Htt-associated proteins, 104 of which were found with the yeast method and 130 with the pull downs. We then tested an arbitrary set of 60 genes encoding interacting proteins for their ability to behave as genetic modifiers of neurodegeneration in a Drosophila model of HD. This high-content validation assay showed that 27 of 60 orthologs tested were high-confidence genetic modifiers, as modification was observed with more than one allele. The 45% hit rate for genetic modifiers seen among the interactors is an order of magnitude higher than the 1%-4% typically observed in unbiased genetic screens. Genetic modifiers were similarly represented among proteins discovered using yeast two-hybrid and pull-down/mass spectrometry methods, supporting the notion that these complementary technologies are equally useful in identifying biologically relevant proteins. Interacting proteins confirmed as modifiers of the neurodegeneration phenotype represent a diverse array of biological functions, including synaptic transmission, cytoskeletal organization, signal transduction, and transcription. Among the modifiers were 17 loss-of-function suppressors of neurodegeneration, which can be considered potential targets for therapeutic intervention. Finally, we show that seven interacting proteins from among 11 tested were able to co-immunoprecipitate with full-length Htt from mouse brain. These studies demonstrate that high-throughput screening for protein interactions combined with genetic validation in a model organism is a powerful approach for identifying novel candidate modifiers of polyglutamine toxicity.
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