Prion species barrier between the closely related yeast proteins is detected despite coaggregation

Buxin Chen1, Gary P Newnam, Yury O Chernoff

  • 1School of Biology and Institute for Bioengineering and Bioscience, Georgia Institute of Technology, 310 Ferst Drive, Atlanta, GA 30332-0230, USA.

Insights

Prion transmission between species, or the "species barrier," is not solely due to protein coaggregation. Conformational changes, not coaggregation, appear to control prion specificity across species.

Area of Science:

  • Molecular Biology
  • Protein Biochemistry
  • Yeast Genetics

Background:

  • Prions are protein isoforms causing neurodegenerative diseases and heritable traits.
  • Prion transmission, the "species barrier," typically requires high sequence identity.
  • Coaggregation failure was previously thought to cause the species barrier.

Purpose of the Study:

  • To investigate the role of coaggregation in the prion species barrier.
  • To analyze prion transmission and stability using divergent yeast Sup35 proteins.
  • To determine if cross-species prion conversion correlates with coaggregation.

Main Methods:

  • Studied Saccharomyces sensu stricto Sup35 protein variants.
  • Assessed prion formation and stability in Saccharomyces cerevisiae.
  • Evaluated in vivo cross-species prion conversion and in vitro polymerization.

Main Results:

  • All heterologous Sup35 proteins formed prions in S. cerevisiae, though less stable.
  • Heterologous Sup35 proteins coaggregated in vivo.
  • Cross-species prion conversion and polymerization were reduced, demonstrating a species barrier, which was asymmetric.

Conclusions:

  • Prion species barrier does not strictly correlate with coaggregation ability.
  • Cross-species prion transmission is likely regulated by conformational transitions, not coaggregation.
  • Species-specificity in prion transmission is determined at the level of conformational change.

Related Concept Videos

Yeast Signaling01:28

Yeast Signaling

Yeasts are single-celled organisms, but unlike bacteria, they are eukaryotes (cells with a nucleus). Cell signaling in yeast is similar to signaling in other eukaryotic cells. A ligand, such as a protein or a small molecule released from a yeast cell, attaches to a receptor on the cell surface. The binding stimulates second-messenger kinases to activate or inactivate transcription factors that further regulate gene expression. Many of the yeast intracellular signaling cascades have similar...
Protein Complexes with Interchangeable Parts01:57

Protein Complexes with Interchangeable Parts

Groups of proteins may form a complex where each protein in this complex has a different role in the overall execution of the complex’s function. Often some of the proteins in the complex can be replaced by a closely related variant to give a complex that contains many of the same components yet is functionally distinct.
The SCF ubiquitin ligase is a protein complex of five individual proteins. This complex attaches ubiquitin to other target proteins to mark them for degradation. In order to...
Understanding Species and Reproductive Barriers01:17

Understanding Species and Reproductive Barriers

A species is a group of organisms that interbreed and produce fertile offspring. Typically, individuals of the same species appear similar and share common characteristics due to their highly similar genomes. However, not all organisms that look alike are members of the same species. Various mechanisms keep most species discrete. While some mechanisms prevent reproductive behavior and fertilization (pre-zygotic isolation), others prevent the production of fertile offspring after mating has...
Amyloid Fibrils03:03

Amyloid Fibrils

Amyloid fibrils are aggregates of misfolded proteins.  Under most circumstances, misfolded proteins are either refolded by chaperone proteins or degraded by the proteasome. However, in the case of a mutation or a disease, these proteins can accumulate to form large clusters and often further assemble to form elongated fibers, called fibrils. 
Amyloid deposits were observed as early as 1639 in the liver and the spleen.   In 1854, Rudolph Virchow performed iodine staining, normally used to...