Mammalian amyloidogenic proteins promote prion nucleation in yeast

Pavithra Chandramowlishwaran1, Meng Sun1, Kristin L Casey1

  • 1From the School of Biological Sciences, Georgia Institute of Technology, Atlanta, Georgia 30332.

Insights

Mammalian amyloidogenic proteins fused to yeast prion domains can initiate prion formation without pre-existing aggregates. This discovery offers a new method for studying amyloid nucleation and identifying related chemicals and proteins.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Neuroscience

Background:

  • Prions and amyloids are protein aggregates implicated in diseases and heritable traits.
  • Yeast prion formation typically requires pre-existing aggregates for nucleation.
  • The prion domain of yeast Sup35 protein is crucial for prion formation.

Purpose of the Study:

  • To investigate if mammalian amyloidogenic proteins can promote yeast prion nucleation.
  • To determine the role of physical linkage between mammalian proteins and yeast prion domains in nucleation.
  • To develop a yeast-based assay for studying amyloid nucleation.

Main Methods:

  • Fusion of the Sup35 prion domain to various mammalian proteins.
  • Expression of fusion proteins in yeast.
  • Biochemical and cytological analysis of protein aggregate formation.
  • Assessing prion nucleation in the absence of pre-existing aggregates.

Main Results:

  • Fusion of Sup35 prion domain to certain mammalian amyloidogenic proteins promoted yeast prion nucleation independently of pre-existing aggregates.
  • Physical linkage of the mammalian protein to the yeast prion domain was essential for nucleation.
  • Sequence modifications affecting amyloidogenicity of human amyloid-β and mouse prion protein altered yeast prion nucleation.

Conclusions:

  • Mammalian amyloidogenic proteins, when physically linked to the yeast Sup35 prion domain, can initiate prion formation.
  • This yeast-based system provides a novel assay for dissecting amyloidogenic proteins and identifying nucleation modulators.
  • The findings advance understanding of prion biogenesis and offer tools for disease research.

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