Cryo-EM structure of ex vivo Sup35 yeast prion and the factors defining prion phenotype

Abstract Human prions and amyloids exhibit structural diversity that correlates with different pathological manifestations. Yeast prions represent a convenient model for studying fundamental properties of prions and their strain diversity. The Sup35 yeast prion has multiple structural variants, divided into “strong” and “weak” groups differing in frequency of fibril fragmentation and resulting nonsense-suppression. The molecular origin of these distinctions remains unclear. Here, we show that the different frequency of prion fragmentation is determined by their stability, rather than the efficiency of chaperone binding. The fully protease-resistant part (residues 2-32) of the Sup35 prion core is a key for the prion phenotype and maintenance, whereas partially resistant part (33-72) is less important. We established the cryo-EM structure of a strong Sup35 prion variant purified from yeast, comprising residues 2–64, with 2.7 Å resolution. Comparison of this structure with that of Sup35 amyloid formed in vitro at 4˚C revealed their significant difference.

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Journal
Nature Communications
Published
2026-09-19
DOI
https://doi.org/10.1038/s41467-026-77823-3
Primary Topic
Prion Diseases and Protein Misfolding
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article
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article

Cryo-EM structure of ex vivo Sup35 yeast prion and the factors defining prion phenotype

Vitaly V. Kushnirov, Timur N. Baymukhametov, Alexander A. Dergalev, Anna D. Burtseva et al.
Nature Communications
Prion Diseases and Protein Misfolding
article

Cryo-EM structure of ex vivo Sup35 yeast prion and the factors defining prion phenotype

Vitaly V. Kushnirov, Timur N. Baymukhametov, Alexander A. Dergalev, Anna D. Burtseva, Olga V. Mitkevich, Vladimir O. Popov, Konstantin M. Boyko, Yury M. Chesnokov
article en

Abstract

Abstract Human prions and amyloids exhibit structural diversity that correlates with different pathological manifestations. Yeast prions represent a convenient model for studying fundamental properties of prions and their strain diversity. The Sup35 yeast prion has multiple structural variants, divided into “strong” and “weak” groups differing in frequency of fibril fragmentation and resulting nonsense-suppression. The molecular origin of these distinctions remains unclear. Here, we show that the different frequency of prion fragmentation is determined by their stability, rather than the efficiency of chaperone binding. The fully protease-resistant part (residues 2-32) of the Sup35 prion core is a key for the prion phenotype and maintenance, whereas partially resistant part (33-72) is less important. We established the cryo-EM structure of a strong Sup35 prion variant purified from yeast, comprising residues 2–64, with 2.7 Å resolution. Comparison of this structure with that of Sup35 amyloid formed in vitro at 4˚C revealed their significant difference.

Nature Communications
Kurchatov Institute (RU), A N Bach Institute of Biochemistry (RU)
Openalex Percentile: Top 18%
Prion Diseases and Protein Misfolding
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Cryo-EM structure of ex vivo Sup35 yeast prion and the factors defining prion phenotype — Vitaly V. Kushnirov, Timur N. Baymukhametov, et al. · Nature Communications (2026) | TGRS Research Map | TGRS