Hsp110 chaperones regulate prion formation and propagation in S. cerevisiae by two discrete activities.

The cytosolic chaperone network of Saccharomyces cerevisiae is intimately associated with the emergence and maintenance of prion traits. Recently, the Hsp110 protein, Sse1, has been identified as a nucleotide exchange factor (NEF) for both cytosolic Hsp70 chaperone family members, Ssa1 and Ssb1. We...

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Main Authors: Heather Sadlish, Heike Rampelt, James Shorter, Renee D Wegrzyn, Claes Andréasson, Susan Lindquist, Bernd Bukau
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2008-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC2258148?pdf=render
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spelling doaj-66b7b14b77704bdfaf67fe11ba3e673d2020-11-25T02:19:49ZengPublic Library of Science (PLoS)PLoS ONE1932-62032008-01-0133e176310.1371/journal.pone.0001763Hsp110 chaperones regulate prion formation and propagation in S. cerevisiae by two discrete activities.Heather SadlishHeike RampeltJames ShorterRenee D WegrzynClaes AndréassonSusan LindquistBernd BukauThe cytosolic chaperone network of Saccharomyces cerevisiae is intimately associated with the emergence and maintenance of prion traits. Recently, the Hsp110 protein, Sse1, has been identified as a nucleotide exchange factor (NEF) for both cytosolic Hsp70 chaperone family members, Ssa1 and Ssb1. We have investigated the role of Sse1 in the de novo formation and propagation of [PSI(+)], the prion form of the translation termination factor, Sup35. As observed by others, we find that Sse1 is essential for efficient prion propagation. Our results suggest that the NEF activity is required for maintaining sufficient levels of substrate-free Ssa1. However, Sse1 exhibits an additional NEF-independent activity; it stimulates in vitro nucleation of Sup35NM, the prion domain of Sup35. We also observe that high levels of Sse1, but not of an unrelated NEF, very potently inhibit Hsp104-mediated curing of [PSI(+)]. Taken together, these results suggest a chaperone-like activity of Sse1 that assists in stabilization of early folding intermediates of the Sup35 prion conformation. This activity is not essential for prion formation under conditions of Sup35 overproduction, however, it may be relevant for spontaneous [PSI(+)] formation as well as for protection of the prion trait upon physiological Hsp104 induction.http://europepmc.org/articles/PMC2258148?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Heather Sadlish
Heike Rampelt
James Shorter
Renee D Wegrzyn
Claes Andréasson
Susan Lindquist
Bernd Bukau
spellingShingle Heather Sadlish
Heike Rampelt
James Shorter
Renee D Wegrzyn
Claes Andréasson
Susan Lindquist
Bernd Bukau
Hsp110 chaperones regulate prion formation and propagation in S. cerevisiae by two discrete activities.
PLoS ONE
author_facet Heather Sadlish
Heike Rampelt
James Shorter
Renee D Wegrzyn
Claes Andréasson
Susan Lindquist
Bernd Bukau
author_sort Heather Sadlish
title Hsp110 chaperones regulate prion formation and propagation in S. cerevisiae by two discrete activities.
title_short Hsp110 chaperones regulate prion formation and propagation in S. cerevisiae by two discrete activities.
title_full Hsp110 chaperones regulate prion formation and propagation in S. cerevisiae by two discrete activities.
title_fullStr Hsp110 chaperones regulate prion formation and propagation in S. cerevisiae by two discrete activities.
title_full_unstemmed Hsp110 chaperones regulate prion formation and propagation in S. cerevisiae by two discrete activities.
title_sort hsp110 chaperones regulate prion formation and propagation in s. cerevisiae by two discrete activities.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2008-01-01
description The cytosolic chaperone network of Saccharomyces cerevisiae is intimately associated with the emergence and maintenance of prion traits. Recently, the Hsp110 protein, Sse1, has been identified as a nucleotide exchange factor (NEF) for both cytosolic Hsp70 chaperone family members, Ssa1 and Ssb1. We have investigated the role of Sse1 in the de novo formation and propagation of [PSI(+)], the prion form of the translation termination factor, Sup35. As observed by others, we find that Sse1 is essential for efficient prion propagation. Our results suggest that the NEF activity is required for maintaining sufficient levels of substrate-free Ssa1. However, Sse1 exhibits an additional NEF-independent activity; it stimulates in vitro nucleation of Sup35NM, the prion domain of Sup35. We also observe that high levels of Sse1, but not of an unrelated NEF, very potently inhibit Hsp104-mediated curing of [PSI(+)]. Taken together, these results suggest a chaperone-like activity of Sse1 that assists in stabilization of early folding intermediates of the Sup35 prion conformation. This activity is not essential for prion formation under conditions of Sup35 overproduction, however, it may be relevant for spontaneous [PSI(+)] formation as well as for protection of the prion trait upon physiological Hsp104 induction.
url http://europepmc.org/articles/PMC2258148?pdf=render
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