Anti-Prion Systems in
Diphosphates
/ metabolism
Heat-Shock Proteins
/ genetics
Humans
Inositol
/ metabolism
Molecular Chaperones
/ metabolism
Polymers
/ metabolism
Prion Proteins
/ metabolism
Prions
/ chemistry
RNA Helicases
/ metabolism
RNA, Messenger
/ metabolism
Saccharomyces cerevisiae
/ genetics
Saccharomyces cerevisiae Proteins
/ genetics
Trans-Activators
/ metabolism
amyloid
anti-prion system
prion
yeast
Journal
Viruses
ISSN: 1999-4915
Titre abrégé: Viruses
Pays: Switzerland
ID NLM: 101509722
Informations de publication
Date de publication:
01 09 2022
01 09 2022
Historique:
received:
16
06
2022
revised:
01
08
2022
accepted:
06
08
2022
entrez:
23
9
2022
pubmed:
24
9
2022
medline:
28
9
2022
Statut:
epublish
Résumé
Prions are infectious proteins, mostly having a self-propagating amyloid (filamentous protein polymer) structure consisting of an abnormal form of a normally soluble protein. These prions arise spontaneously in the cell without known reason, and their effects were generally considered to be fatal based on prion diseases in humans or mammals. However, the wide array of prion studies in yeast including filamentous fungi revealed that their effects can range widely, from lethal to very mild (even cryptic) or functional, depending on the nature of the prion protein and the specific prion variant (or strain) made by the same prion protein but with a different conformation. This prion biology is affected by an array of molecular chaperone systems, such as Hsp40, Hsp70, Hsp104, and combinations of them. In parallel with the systems required for prion propagation, yeast has multiple anti-prion systems, constantly working in the normal cell without overproduction of or a deficiency in any protein, which have negative effects on prions by blocking their formation, curing many prions after they arise, preventing prion infections, and reducing the cytotoxicity produced by prions. From the protectors of nascent polypeptides (Ssb1/2p, Zuo1p, and Ssz1p) to the protein sequesterase (Btn2p), the disaggregator (Hsp104), and the mysterious Cur1p, normal levels of each can cure the prion variants arising in its absence. The controllers of mRNA quality, nonsense-mediated mRNA decay proteins (Upf1, 2, 3), can cure newly formed prion variants by association with a prion-forming protein. The regulator of the inositol pyrophosphate metabolic pathway (Siw14p) cures certain prion variants by lowering the levels of certain organic compounds. Some of these proteins have other cellular functions (e.g., Btn2), while others produce an anti-prion effect through their primary role in the normal cell (e.g., ribosomal chaperones). Thus, these anti-prion actions are the innate defense strategy against prions. Here, we outline the anti-prion systems in yeast that produce innate immunity to prions by a multi-layered operation targeting each step of prion development.
Identifiants
pubmed: 36146752
pii: v14091945
doi: 10.3390/v14091945
pmc: PMC9503967
pii:
doi:
Substances chimiques
Diphosphates
0
Heat-Shock Proteins
0
Molecular Chaperones
0
Polymers
0
Prion Proteins
0
Prions
0
RNA, Messenger
0
Saccharomyces cerevisiae Proteins
0
Trans-Activators
0
HsP104 protein, S cerevisiae
143012-44-6
Inositol
4L6452S749
RNA Helicases
EC 3.6.4.13
UPF1 protein, human
EC 3.6.4.13
Types de publication
Journal Article
Review
Research Support, Non-U.S. Gov't
Langues
eng
Sous-ensembles de citation
IM
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