Site-Specific Fluorescence Depolarization Kinetics Distinguishes the Amyloid Folds Responsible for Distinct Yeast

Dominic Narang1, Hema M Swasthi1, Sayanta Mahapatra1

  • 1Centre for Protein Science, Design and Engineering, ‡Department of Biological Sciences, and ⊥Department of Chemical Sciences, Indian Institute of Science Education and Research (IISER) , Mohali, Sector 81, Knowledge City, S.A.S. Nagar, Mohali 140306, Punjab, India.

Insights

Yeast prion protein Sup35NM forms amyloid fibrils that cause the [PSI+] state. Structural differences in these amyloids, Sc4 and Sc37, explain strong versus weak prion strains by altering protein dynamics.

Area of Science:

  • Biochemistry
  • Structural Biology
  • Yeast Genetics

Background:

  • The prion determinant of yeast prion protein Sup35NM forms amyloid fibrils.
  • These fibrils convert the yeast from the nonprion [psi-] to the prion [PSI+] state.
  • In vitro generated amyloids, Sc4 and Sc37, mimic yeast prion strain diversity.

Purpose of the Study:

  • To investigate residue-specific structural and dynamical attributes of yeast prion amyloids.
  • To understand how amyloid structure relates to prion strain diversity (strong vs. weak phenotypes).

Main Methods:

  • Creation of 18 single-tryptophan (Trp) variants in the Sup35NM domain.
  • Fluorescence measurements to report site-specific structural details.
  • Picosecond fluorescence depolarization to map conformational mobility.

Main Results:

  • Amyloid Sc4 (strong phenotype) showed higher local flexibility than Sc37 (weak phenotype) across most residues.
  • Mobility differences were prominent in the N-domain ends and the exposed M-domain.
  • The M-domain exhibited greater mobility in Sc4, indicating less chain packing.

Conclusions:

  • Altered local conformational dynamics in Sc4 and Sc37 provide molecular insights into prion strain variation.
  • Differences in flexibility and chain packing influence prion strain inheritance patterns.