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Updated: Feb 3, 2026

Protein Misfolding Cyclic Amplification of Prions
Published on: November 7, 2012
Direct Observation of Murine Prion Protein Replication in Vitro
Jason C Sang1, Georg Meisl1, Alana M Thackray2
1Department of Chemistry , University of Cambridge , Cambridge , CB2 1EW , U.K.
Abstract:
Prions are believed to propagate when an assembly of prion protein (PrP) enters a cell and replicates to produce two or more fibrils, leading to an exponential increase in PrP aggregate number with time. However, the molecular basis of this process has not yet been established in detail. Here, we use single-aggregate imaging to study fibril fragmentation and elongation of individual murine PrP aggregates from seeded aggregation in vitro. We found that PrP elongation occurs via a structural conversion from a PK-sensitive to PK-resistant conformer. Fibril fragmentation was found to be length-dependent and resulted in the formation of PK-sensitive fragments. Measurement of the rate constants for these processes also allowed us to predict a simple spreading model for aggregate propagation through the brain, assuming that doubling of the aggregate number is rate-limiting. In contrast, while α-synuclein aggregated by the same mechanism, it showed significantly slower elongation and fragmentation rate constants than PrP, leading to much slower replication rate. Overall, our study shows that fibril elongation with fragmentation are key molecular processes in PrP and α-synuclein aggregate replication, an important concept in prion biology, and also establishes a simple framework to start to determine the main factors that control the rate of prion and prion-like spreading in animals.
Insights
Prion protein (PrP) aggregates elongate and fragment, driving prion replication. This study quantifies these processes for PrP and alpha-synuclein, revealing key factors in prion-like spreading.
Area of Science:
- Neuroscience
- Biochemistry
- Molecular Biology
Background:
- Prion diseases involve the propagation of misfolded prion protein (PrP) aggregates.
- The molecular mechanisms underlying prion replication, specifically fibril elongation and fragmentation, remain incompletely understood.
Purpose of the Study:
- To investigate the molecular basis of prion protein (PrP) aggregate replication in vitro.
- To compare the aggregation dynamics of PrP with alpha-synuclein.
Main Methods:
- Utilized single-aggregate imaging to monitor fibril fragmentation and elongation of individual murine PrP aggregates.
- Studied seeded aggregation in vitro to observe structural conversion from PK-sensitive to PK-resistant conformers during elongation.
- Measured rate constants for elongation and fragmentation processes.
Main Results:
- PrP elongation involves a structural conversion from a proteinase K (PK)-sensitive to a PK-resistant state.
- Fibril fragmentation is length-dependent and generates PK-sensitive fragments.
- Alpha-synuclein exhibits slower elongation and fragmentation rates compared to PrP, resulting in reduced replication rates.
Conclusions:
- Fibril elongation and fragmentation are critical molecular processes governing the replication of PrP and alpha-synuclein aggregates.
- The study provides a framework for understanding factors controlling prion and prion-like disease spreading.
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