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.

Neurochemical Research
|January 4, 2019
PubMed

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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