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Updated: Jan 31, 2026

Biochemical Purification and Proteomic Characterization of Amyloid Fibril Cores from the Brain
Published on: April 28, 2022
Segments in the Amyloid Core that Distinguish Hamster from Mouse Prion Fibrils
Howard C-H Shen1,2, Yung-Han Chen1, Yu-Sheng Lin1,3
1Institute of Biological Chemistry, Academia Sinica, No. 128, Sec. 2, Academia Rd, Nankang, Taipei, 11529, Taiwan.
Abstract:
Prion diseases are transmissible fatal neurodegenerative disorders affecting humans and other mammals. The disease transmission can occur between different species but is limited by the sequence homology between host and inoculum. The crucial molecular event in the progression of this disease is prion formation, starting from the conformational conversion of the normal, membrane-anchored prion protein (PrPC) into the misfolded, β-sheet-rich and aggregation-prone isoform (PrPSc), which then self-associates into the infectious amyloid form called prion. Amyloid is the aggregate formed from one-dimensional protein association. As amyloid formation is a key hallmark in prion pathogenesis, studying which segments in prion protein are involved in the amyloid formation can provide molecular details in the cross-species transmission barrier of prion diseases. However, due to the difficulties of studying protein aggregates, very limited knowledge about prion structure or prion formation was disclosed by now. In this study, cross-seeding assay was used to identify the segments involved in the amyloid fibril formation of full-length hamster prion protein, SHaPrP(23-231). Our results showed that the residues in the segments 108-127, 172-194 (helix 2 in PrPC) and 200-227 (helix 3 in PrPC) are in the amyloid core of hamster prion fibrils. The segment 127-143, but not 107-126 (which corresponds to hamster sequence 108-127), was previously reported to be involved in the amyloid core of full-length mouse prion fibrils. Our results indicate that hamster prion protein and mouse prion protein use different segments to form the amyloid core in amyloidogenesis. The sequence-dependent core formation can be used to explain the seeding barrier between mouse and hamster.
Insights
Prion diseases involve misfolded prion protein forming amyloid fibrils. Hamster prion protein uses different segments for amyloid core formation than mouse prion protein, explaining cross-species transmission barriers.
Area of Science:
- Neuroscience
- Biochemistry
- Structural Biology
Background:
- Prion diseases are fatal, transmissible neurodegenerative disorders.
- Prion formation involves the misfolding of the prion protein (PrPC) into infectious amyloid aggregates (PrPSc).
- Understanding prion structure is crucial for elucidating cross-species transmission barriers.
Purpose of the Study:
- To identify specific segments of hamster prion protein involved in amyloid fibril formation.
- To compare amyloid core formation in hamster prion protein with previously studied mouse prion protein.
- To provide molecular insights into the cross-species transmission barrier of prion diseases.
Main Methods:
- Cross-seeding assays were employed to study amyloid fibril formation.
- Full-length hamster prion protein (SHaPrP(23-231)) was used in the experiments.
- Analysis focused on identifying segments within the prion protein sequence that constitute the amyloid core.
Main Results:
- Specific segments (108-127, 172-194, and 200-227) were identified as the amyloid core of hamster prion fibrils.
- These segments correspond to helix 2 and helix 3 regions of the native prion protein.
- Hamster prion protein utilizes different segments for amyloid core formation compared to mouse prion protein.
Conclusions:
- Amyloid core formation in prion proteins is sequence-dependent.
- Differences in segment involvement explain the observed seeding barrier between mouse and hamster prion strains.
- This finding contributes to understanding the molecular basis of prion disease transmission.
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