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Multiplexed Proteome Dynamics Profiling Reveals Mechanisms Controlling Protein Homeostasis

Protein degradation plays important roles in biological processes and is tightly regulated. Further, targeted proteolysis is an emerging research tool and therapeutic strategy. However, proteome-wide technologies to investigate the causes and consequences of protein degradation in biological systems...

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Autores principales: Savitski, Mikhail M., Zinn, Nico, Faelth-Savitski, Maria, Poeckel, Daniel, Gade, Stephan, Becher, Isabelle, Muelbaier, Marcel, Wagner, Anne J., Strohmer, Katrin, Werner, Thilo, Melchert, Stephanie, Petretich, Massimo, Rutkowska, Anna, Vappiani, Johanna, Franken, Holger, Steidel, Michael, Sweetman, Gavain M., Gilan, Omer, Lam, Enid Y.N., Dawson, Mark A., Prinjha, Rab K., Grandi, Paola, Bergamini, Giovanna, Bantscheff, Marcus
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cell Press 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5871718/
https://www.ncbi.nlm.nih.gov/pubmed/29551266
http://dx.doi.org/10.1016/j.cell.2018.02.030
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author Savitski, Mikhail M.
Zinn, Nico
Faelth-Savitski, Maria
Poeckel, Daniel
Gade, Stephan
Becher, Isabelle
Muelbaier, Marcel
Wagner, Anne J.
Strohmer, Katrin
Werner, Thilo
Melchert, Stephanie
Petretich, Massimo
Rutkowska, Anna
Vappiani, Johanna
Franken, Holger
Steidel, Michael
Sweetman, Gavain M.
Gilan, Omer
Lam, Enid Y.N.
Dawson, Mark A.
Prinjha, Rab K.
Grandi, Paola
Bergamini, Giovanna
Bantscheff, Marcus
author_facet Savitski, Mikhail M.
Zinn, Nico
Faelth-Savitski, Maria
Poeckel, Daniel
Gade, Stephan
Becher, Isabelle
Muelbaier, Marcel
Wagner, Anne J.
Strohmer, Katrin
Werner, Thilo
Melchert, Stephanie
Petretich, Massimo
Rutkowska, Anna
Vappiani, Johanna
Franken, Holger
Steidel, Michael
Sweetman, Gavain M.
Gilan, Omer
Lam, Enid Y.N.
Dawson, Mark A.
Prinjha, Rab K.
Grandi, Paola
Bergamini, Giovanna
Bantscheff, Marcus
author_sort Savitski, Mikhail M.
collection PubMed
description Protein degradation plays important roles in biological processes and is tightly regulated. Further, targeted proteolysis is an emerging research tool and therapeutic strategy. However, proteome-wide technologies to investigate the causes and consequences of protein degradation in biological systems are lacking. We developed “multiplexed proteome dynamics profiling” (mPDP), a mass-spectrometry-based approach combining dynamic-SILAC labeling with isobaric mass tagging for multiplexed analysis of protein degradation and synthesis. In three proof-of-concept studies, we uncover different responses induced by the bromodomain inhibitor JQ1 versus a JQ1 proteolysis targeting chimera; we elucidate distinct modes of action of estrogen receptor modulators; and we comprehensively classify HSP90 clients based on their requirement for HSP90 constitutively or during synthesis, demonstrating that constitutive HSP90 clients have lower thermal stability than non-clients, have higher affinity for the chaperone, vary between cell types, and change upon external stimuli. These findings highlight the potential of mPDP to identify dynamically controlled degradation mechanisms in cellular systems.
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spelling pubmed-58717182018-03-28 Multiplexed Proteome Dynamics Profiling Reveals Mechanisms Controlling Protein Homeostasis Savitski, Mikhail M. Zinn, Nico Faelth-Savitski, Maria Poeckel, Daniel Gade, Stephan Becher, Isabelle Muelbaier, Marcel Wagner, Anne J. Strohmer, Katrin Werner, Thilo Melchert, Stephanie Petretich, Massimo Rutkowska, Anna Vappiani, Johanna Franken, Holger Steidel, Michael Sweetman, Gavain M. Gilan, Omer Lam, Enid Y.N. Dawson, Mark A. Prinjha, Rab K. Grandi, Paola Bergamini, Giovanna Bantscheff, Marcus Cell Article Protein degradation plays important roles in biological processes and is tightly regulated. Further, targeted proteolysis is an emerging research tool and therapeutic strategy. However, proteome-wide technologies to investigate the causes and consequences of protein degradation in biological systems are lacking. We developed “multiplexed proteome dynamics profiling” (mPDP), a mass-spectrometry-based approach combining dynamic-SILAC labeling with isobaric mass tagging for multiplexed analysis of protein degradation and synthesis. In three proof-of-concept studies, we uncover different responses induced by the bromodomain inhibitor JQ1 versus a JQ1 proteolysis targeting chimera; we elucidate distinct modes of action of estrogen receptor modulators; and we comprehensively classify HSP90 clients based on their requirement for HSP90 constitutively or during synthesis, demonstrating that constitutive HSP90 clients have lower thermal stability than non-clients, have higher affinity for the chaperone, vary between cell types, and change upon external stimuli. These findings highlight the potential of mPDP to identify dynamically controlled degradation mechanisms in cellular systems. Cell Press 2018-03-22 /pmc/articles/PMC5871718/ /pubmed/29551266 http://dx.doi.org/10.1016/j.cell.2018.02.030 Text en Crown Copyright © 2018 Published by Elsevier Inc. http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Savitski, Mikhail M.
Zinn, Nico
Faelth-Savitski, Maria
Poeckel, Daniel
Gade, Stephan
Becher, Isabelle
Muelbaier, Marcel
Wagner, Anne J.
Strohmer, Katrin
Werner, Thilo
Melchert, Stephanie
Petretich, Massimo
Rutkowska, Anna
Vappiani, Johanna
Franken, Holger
Steidel, Michael
Sweetman, Gavain M.
Gilan, Omer
Lam, Enid Y.N.
Dawson, Mark A.
Prinjha, Rab K.
Grandi, Paola
Bergamini, Giovanna
Bantscheff, Marcus
Multiplexed Proteome Dynamics Profiling Reveals Mechanisms Controlling Protein Homeostasis
title Multiplexed Proteome Dynamics Profiling Reveals Mechanisms Controlling Protein Homeostasis
title_full Multiplexed Proteome Dynamics Profiling Reveals Mechanisms Controlling Protein Homeostasis
title_fullStr Multiplexed Proteome Dynamics Profiling Reveals Mechanisms Controlling Protein Homeostasis
title_full_unstemmed Multiplexed Proteome Dynamics Profiling Reveals Mechanisms Controlling Protein Homeostasis
title_short Multiplexed Proteome Dynamics Profiling Reveals Mechanisms Controlling Protein Homeostasis
title_sort multiplexed proteome dynamics profiling reveals mechanisms controlling protein homeostasis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5871718/
https://www.ncbi.nlm.nih.gov/pubmed/29551266
http://dx.doi.org/10.1016/j.cell.2018.02.030
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