Related Experiment Video
Updated: Feb 24, 2026

Evaluation of the Impact of Protein Aggregation on Cellular Oxidative Stress in Yeast
Published on: June 23, 2018
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.
Abstract:
The prion determinant of a yeast prion protein, Sup35NM, assembles into β-rich amyloid fibrils that switch the nonprion [psi-] state to the prion [PSI+] state of yeast. Previous studies showed that two distinct forms of amyloids (Sc4 and Sc37), generated in vitro at two different temperatures (4 and 37 °C), recapitulate the strain phenomenon in Saccharomyces cerevisiae. Sc4 demonstrates a strong [PSI+] phenotype, whereas Sc37 shows a weak phenotype. To discern the residue-specific structural and dynamical attributes associated with the amyloids that display strain diversity, we took advantage of the nonoccurrence of tryptophan (Trp) in the NM-domain and created 18 single-Trp variants spanning the entire polypeptide length. The fluorescence readouts from these locations reported the site-specific structural details in Sc4 and Sc37 fibrils. Highly sensitive picosecond fluorescence depolarization measurements at these positions allowed a conformational mobility map to be constructed. Nearly all of the residue positions demonstrated higher local flexibility in Sc4 amyloid, which exhibits a strong phenotype. The differences in the amplitude of local mobility were more pronounced at the two end segments of the N-domain than in the central region. The M-domain is partially exposed and exhibits a higher amplitude of local mobility, indicating a lower degree of chain packing in the amyloid state, as well as a higher mobility in the Sc4 state compared to the Sc37 state. The altered local conformational dynamics in these two distinct amyloid states provide molecular insights into the varied fragility and severing efficiency that govern the inheritance patterns of strong and weak prion strains.
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.
Related Concept Videos
Amyloid Fibrils
Amyloid deposits were observed as early as 1639 in the liver and the spleen. In 1854, Rudolph Virchow performed iodine staining,...
Protein Dynamics in Living Cells
Fluorescent recovery after photobleaching (FRAP) is a fluorescent-protein-based detection technique used to quantify protein movement rates within the cell. This method exposes a small portion of the cell to an intense laser beam. The laser beam causes permanent photobleaching of the fluorophore-tagged proteins in the exposed region. As the bleached...

