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.

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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