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Identification of Human Proteins That Modify Misfolding and Proteotoxicity of Pathogenic Ataxin-1

Proteins with long, pathogenic polyglutamine (polyQ) sequences have an enhanced propensity to spontaneously misfold and self-assemble into insoluble protein aggregates. Here, we have identified 21 human proteins that influence polyQ-induced ataxin-1 misfolding and proteotoxicity in cell model system...

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Autores principales: Petrakis, Spyros, Raskó, Tamás, Russ, Jenny, Friedrich, Ralf P., Stroedicke, Martin, Riechers, Sean-Patrick, Muehlenberg, Katja, Möller, Angeli, Reinhardt, Anita, Vinayagam, Arunachalam, Schaefer, Martin H., Boutros, Michael, Tricoire, Hervé, Andrade-Navarro, Miguel A., Wanker, Erich E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3420947/
https://www.ncbi.nlm.nih.gov/pubmed/22916034
http://dx.doi.org/10.1371/journal.pgen.1002897
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author Petrakis, Spyros
Raskó, Tamás
Russ, Jenny
Friedrich, Ralf P.
Stroedicke, Martin
Riechers, Sean-Patrick
Muehlenberg, Katja
Möller, Angeli
Reinhardt, Anita
Vinayagam, Arunachalam
Schaefer, Martin H.
Boutros, Michael
Tricoire, Hervé
Andrade-Navarro, Miguel A.
Wanker, Erich E.
author_facet Petrakis, Spyros
Raskó, Tamás
Russ, Jenny
Friedrich, Ralf P.
Stroedicke, Martin
Riechers, Sean-Patrick
Muehlenberg, Katja
Möller, Angeli
Reinhardt, Anita
Vinayagam, Arunachalam
Schaefer, Martin H.
Boutros, Michael
Tricoire, Hervé
Andrade-Navarro, Miguel A.
Wanker, Erich E.
author_sort Petrakis, Spyros
collection PubMed
description Proteins with long, pathogenic polyglutamine (polyQ) sequences have an enhanced propensity to spontaneously misfold and self-assemble into insoluble protein aggregates. Here, we have identified 21 human proteins that influence polyQ-induced ataxin-1 misfolding and proteotoxicity in cell model systems. By analyzing the protein sequences of these modifiers, we discovered a recurrent presence of coiled-coil (CC) domains in ataxin-1 toxicity enhancers, while such domains were not present in suppressors. This suggests that CC domains contribute to the aggregation- and toxicity-promoting effects of modifiers in mammalian cells. We found that the ataxin-1–interacting protein MED15, computationally predicted to possess an N-terminal CC domain, enhances spontaneous ataxin-1 aggregation in cell-based assays, while no such effect was observed with the truncated protein MED15ΔCC, lacking such a domain. Studies with recombinant proteins confirmed these results and demonstrated that the N-terminal CC domain of MED15 (MED15CC) per se is sufficient to promote spontaneous ataxin-1 aggregation in vitro. Moreover, we observed that a hybrid Pum1 protein harboring the MED15CC domain promotes ataxin-1 aggregation in cell model systems. In strong contrast, wild-type Pum1 lacking a CC domain did not stimulate ataxin-1 polymerization. These results suggest that proteins with CC domains are potent enhancers of polyQ-mediated protein misfolding and aggregation in vitro and in vivo.
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spelling pubmed-34209472012-08-22 Identification of Human Proteins That Modify Misfolding and Proteotoxicity of Pathogenic Ataxin-1 Petrakis, Spyros Raskó, Tamás Russ, Jenny Friedrich, Ralf P. Stroedicke, Martin Riechers, Sean-Patrick Muehlenberg, Katja Möller, Angeli Reinhardt, Anita Vinayagam, Arunachalam Schaefer, Martin H. Boutros, Michael Tricoire, Hervé Andrade-Navarro, Miguel A. Wanker, Erich E. PLoS Genet Research Article Proteins with long, pathogenic polyglutamine (polyQ) sequences have an enhanced propensity to spontaneously misfold and self-assemble into insoluble protein aggregates. Here, we have identified 21 human proteins that influence polyQ-induced ataxin-1 misfolding and proteotoxicity in cell model systems. By analyzing the protein sequences of these modifiers, we discovered a recurrent presence of coiled-coil (CC) domains in ataxin-1 toxicity enhancers, while such domains were not present in suppressors. This suggests that CC domains contribute to the aggregation- and toxicity-promoting effects of modifiers in mammalian cells. We found that the ataxin-1–interacting protein MED15, computationally predicted to possess an N-terminal CC domain, enhances spontaneous ataxin-1 aggregation in cell-based assays, while no such effect was observed with the truncated protein MED15ΔCC, lacking such a domain. Studies with recombinant proteins confirmed these results and demonstrated that the N-terminal CC domain of MED15 (MED15CC) per se is sufficient to promote spontaneous ataxin-1 aggregation in vitro. Moreover, we observed that a hybrid Pum1 protein harboring the MED15CC domain promotes ataxin-1 aggregation in cell model systems. In strong contrast, wild-type Pum1 lacking a CC domain did not stimulate ataxin-1 polymerization. These results suggest that proteins with CC domains are potent enhancers of polyQ-mediated protein misfolding and aggregation in vitro and in vivo. Public Library of Science 2012-08-16 /pmc/articles/PMC3420947/ /pubmed/22916034 http://dx.doi.org/10.1371/journal.pgen.1002897 Text en © 2012 Petrakis et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Petrakis, Spyros
Raskó, Tamás
Russ, Jenny
Friedrich, Ralf P.
Stroedicke, Martin
Riechers, Sean-Patrick
Muehlenberg, Katja
Möller, Angeli
Reinhardt, Anita
Vinayagam, Arunachalam
Schaefer, Martin H.
Boutros, Michael
Tricoire, Hervé
Andrade-Navarro, Miguel A.
Wanker, Erich E.
Identification of Human Proteins That Modify Misfolding and Proteotoxicity of Pathogenic Ataxin-1
title Identification of Human Proteins That Modify Misfolding and Proteotoxicity of Pathogenic Ataxin-1
title_full Identification of Human Proteins That Modify Misfolding and Proteotoxicity of Pathogenic Ataxin-1
title_fullStr Identification of Human Proteins That Modify Misfolding and Proteotoxicity of Pathogenic Ataxin-1
title_full_unstemmed Identification of Human Proteins That Modify Misfolding and Proteotoxicity of Pathogenic Ataxin-1
title_short Identification of Human Proteins That Modify Misfolding and Proteotoxicity of Pathogenic Ataxin-1
title_sort identification of human proteins that modify misfolding and proteotoxicity of pathogenic ataxin-1
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3420947/
https://www.ncbi.nlm.nih.gov/pubmed/22916034
http://dx.doi.org/10.1371/journal.pgen.1002897
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