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Investigating the Spreading and Toxicity of Prion-like Proteins Using the Metazoan Model Organism C. elegans
Published on: January 8, 2015
Amyloid fibrils from the N-terminal prion protein fragment are infectious
Jin-Kyu Choi1, Ignazio Cali2, Krystyna Surewicz1
1Department of Physiology and Biophysics, Case Western Reserve University, Cleveland, OH 44106.
Abstract:
Recombinant C-terminally truncated prion protein PrP23-144 (which corresponds to the Y145Stop PrP variant associated with a Gerstmann-Sträussler-Scheinker-like prion disease) spontaneously forms amyloid fibrils with a parallel in-register β-sheet architecture and β-sheet core mapping to residues ∼112-139. Here we report that mice (both tga20 and wild type) inoculated with a murine (moPrP23-144) version of these fibrils develop clinical prion disease with a 100% attack rate. Remarkably, even though fibrils in the inoculum lack the entire C-terminal domain of PrP, brains of clinically sick mice accumulate longer proteinase K-resistant (PrPres) fragments of ∼17-32 kDa, similar to those observed in classical scrapie strains. Shorter, Gerstmann-Sträussler-Scheinker-like PrPres fragments are also present. The evidence that moPrP23-144 amyloid fibrils generated in the absence of any cofactors are bona fide prions provides a strong support for the protein-only hypothesis of prion diseases in its pure form, arguing against the notion that nonproteinaceous cofactors are obligatory structural components of all infectious prions. Furthermore, our finding that a relatively short β-sheet core of PrP23-144 fibrils (residues ∼112-139) with a parallel in-register organization of β-strands is capable of seeding the conversion of full-length prion protein to the infectious form has important implications for the ongoing debate regarding structural aspects of prion protein conversion and molecular architecture of mammalian prions.
Insights
Truncated prion protein (PrP23-144) amyloid fibrils cause prion disease in mice, supporting the protein-only hypothesis. These fibrils, lacking the C-terminal domain, generate infectious prions without cofactors.
Area of Science:
- Neuroscience
- Biochemistry
- Structural Biology
Background:
- Prion diseases are fatal neurodegenerative disorders.
- The protein-only hypothesis suggests prions are composed solely of misfolded prion protein (PrP).
- The structural requirements for prion infectivity remain incompletely understood.
Purpose of the Study:
- To investigate if truncated prion protein amyloid fibrils can act as infectious prions.
- To determine the role of the C-terminal domain and cofactors in prion formation.
- To explore the structural basis of prion infectivity.
Main Methods:
- Generation of recombinant C-terminally truncated PrP23-144 amyloid fibrils.
- Inoculation of these fibrils into wild-type and tga20 mice.
- Analysis of prion proteinase K-resistant fragments (PrPres) in infected mouse brains.
Main Results:
- Murine PrP23-144 fibrils induced prion disease with 100% attack rate in mice.
- Infectious prions with varied PrPres fragment sizes were detected, including classical scrapie-like and GSS-like forms.
- Prion infectivity was achieved without any nonproteinaceous cofactors.
Conclusions:
- C-terminally truncated PrP23-144 amyloid fibrils are bona fide infectious prions.
- This supports the protein-only hypothesis, challenging the necessity of cofactors for all prion infectivity.
- A short, parallel β-sheet core (residues ~112-139) is sufficient to seed prion conversion, informing prion structure-function relationships.
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