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Published on: December 17, 2021
Mechanistic Insight into the Suppression of Polyglutamine Aggregation by SRCP1
Holly N Haver1, Michael Wedemeyer2, Erin Butcher1
1Department of Molecular Genetics and Microbiology, Duke University, Durham, North Carolina 27710, United States.
Abstract:
Protein aggregation is a hallmark of the polyglutamine diseases. One potential treatment for these diseases is suppression of polyglutamine aggregation. Previous work identified the cellular slime mold Dictyostelium discoideum as being naturally resistant to polyglutamine aggregation. Further work identified serine-rich chaperone protein 1 (SRCP1) as a protein that is both necessary in Dictyostelium and sufficient in human cells to suppress polyglutamine aggregation. Therefore, understanding how SRCP1 suppresses aggregation may be useful for developing therapeutics for the polyglutamine diseases. Here we utilized a de novo protein modeling approach to generate predictions of SRCP1's structure. Using our best-fit model, we generated mutants that were predicted to alter the stability of SRCP1 and tested these mutants' stability in cells. Using these data, we identified top models of SRCP1's structure that are consistent with the C-terminal region of SRCP1 forming a β-hairpin with a highly dynamic N-terminal region. We next generated a series of peptides that mimic the predicted β-hairpin and validated that they inhibit aggregation of a polyglutamine-expanded mutant huntingtin exon 1 fragment in vitro. To further assess mechanistic details of how SRCP1 inhibits polyglutamine aggregation, we utilized biochemical assays to determine that SRCP1 inhibits secondary nucleation in a manner dependent upon the regions flanking the polyglutamine tract. Finally, to determine if SRCP1 more could generally suppress protein aggregation, we confirmed that it was sufficient to inhibit aggregation of polyglutamine-expanded ataxin-3. Together these studies provide details into the structural and mechanistic basis of the inhibition of protein aggregation by SRCP1.
Insights
Serine-rich chaperone protein 1 (SRCP1) suppresses polyglutamine aggregation by forming a β-hairpin structure. This discovery offers potential therapeutic strategies for polyglutamine diseases like Huntington's disease.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Protein aggregation, particularly polyglutamine aggregation, is central to neurodegenerative diseases.
- The cellular slime mold *Dictyostelium discoideum* exhibits natural resistance to polyglutamine aggregation.
- Serine-rich chaperone protein 1 (SRCP1) is identified as a key protein suppressing polyglutamine aggregation in *Dictyostelium* and human cells.
Purpose of the Study:
- To elucidate the structural and mechanistic basis of SRCP1's anti-aggregation activity.
- To explore SRCP1 as a potential therapeutic target for polyglutamine diseases.
Main Methods:
- De novo protein structure modeling to predict SRCP1 structure.
- Site-directed mutagenesis to assess protein stability and function.
- In vitro biochemical assays to study aggregation inhibition.
- Peptide-based inhibition assays.
Main Results:
- Structural modeling suggests SRCP1 has a β-hairpin in its C-terminal region and a dynamic N-terminal region.
- Mimetic peptides of the SRCP1 β-hairpin inhibit polyglutamine-expanded huntingtin exon 1 fragment aggregation in vitro.
- SRCP1 inhibits polyglutamine aggregation via secondary nucleation, dependent on flanking regions.
- SRCP1 also suppresses aggregation of polyglutamine-expanded ataxin-3.
Conclusions:
- SRCP1's anti-aggregation mechanism involves a specific β-hairpin structure.
- Understanding SRCP1 provides insights for developing novel therapeutics against polyglutamine diseases.
- SRCP1 demonstrates broad potential in inhibiting various protein aggregation types.
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