Identification of mammalian protein quality control factors by high-throughput cellular imaging.

Protein Quality Control (PQC) pathways are essential to maintain the equilibrium between protein folding and the clearance of misfolded proteins. In order to discover novel human PQC factors, we developed a high-content, high-throughput cell-based assay to assess PQC activity. The assay is based on...

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Main Authors: Gianluca Pegoraro, Ty C Voss, Scott E Martin, Pinar Tuzmen, Rajarshi Guha, Tom Misteli
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2012-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3282772?pdf=render
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spelling doaj-7728615b743e441e85ca77beaa526dcf2020-11-25T02:32:24ZengPublic Library of Science (PLoS)PLoS ONE1932-62032012-01-0172e3168410.1371/journal.pone.0031684Identification of mammalian protein quality control factors by high-throughput cellular imaging.Gianluca PegoraroTy C VossScott E MartinPinar TuzmenRajarshi GuhaTom MisteliProtein Quality Control (PQC) pathways are essential to maintain the equilibrium between protein folding and the clearance of misfolded proteins. In order to discover novel human PQC factors, we developed a high-content, high-throughput cell-based assay to assess PQC activity. The assay is based on a fluorescently tagged, temperature sensitive PQC substrate and measures its degradation relative to a temperature insensitive internal control. In a targeted screen of 1591 siRNA genes involved in the Ubiquitin-Proteasome System (UPS) we identified 25 of the 33 genes encoding for 26S proteasome subunits and discovered several novel PQC factors. An unbiased genome-wide siRNA screen revealed the protein translation machinery, and in particular the EIF3 translation initiation complex, as a novel key modulator of misfolded protein stability. These results represent a comprehensive unbiased survey of human PQC components and establish an experimental tool for the discovery of genes that are required for the degradation of misfolded proteins under conditions of proteotoxic stress.http://europepmc.org/articles/PMC3282772?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Gianluca Pegoraro
Ty C Voss
Scott E Martin
Pinar Tuzmen
Rajarshi Guha
Tom Misteli
spellingShingle Gianluca Pegoraro
Ty C Voss
Scott E Martin
Pinar Tuzmen
Rajarshi Guha
Tom Misteli
Identification of mammalian protein quality control factors by high-throughput cellular imaging.
PLoS ONE
author_facet Gianluca Pegoraro
Ty C Voss
Scott E Martin
Pinar Tuzmen
Rajarshi Guha
Tom Misteli
author_sort Gianluca Pegoraro
title Identification of mammalian protein quality control factors by high-throughput cellular imaging.
title_short Identification of mammalian protein quality control factors by high-throughput cellular imaging.
title_full Identification of mammalian protein quality control factors by high-throughput cellular imaging.
title_fullStr Identification of mammalian protein quality control factors by high-throughput cellular imaging.
title_full_unstemmed Identification of mammalian protein quality control factors by high-throughput cellular imaging.
title_sort identification of mammalian protein quality control factors by high-throughput cellular imaging.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2012-01-01
description Protein Quality Control (PQC) pathways are essential to maintain the equilibrium between protein folding and the clearance of misfolded proteins. In order to discover novel human PQC factors, we developed a high-content, high-throughput cell-based assay to assess PQC activity. The assay is based on a fluorescently tagged, temperature sensitive PQC substrate and measures its degradation relative to a temperature insensitive internal control. In a targeted screen of 1591 siRNA genes involved in the Ubiquitin-Proteasome System (UPS) we identified 25 of the 33 genes encoding for 26S proteasome subunits and discovered several novel PQC factors. An unbiased genome-wide siRNA screen revealed the protein translation machinery, and in particular the EIF3 translation initiation complex, as a novel key modulator of misfolded protein stability. These results represent a comprehensive unbiased survey of human PQC components and establish an experimental tool for the discovery of genes that are required for the degradation of misfolded proteins under conditions of proteotoxic stress.
url http://europepmc.org/articles/PMC3282772?pdf=render
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