Cargando…

Phosphorylation and Proteasome Recognition of the mRNA-Binding Protein Cth2 Facilitates Yeast Adaptation to Iron Deficiency

Iron is an indispensable micronutrient for all eukaryotic organisms due to its participation as a redox cofactor in many metabolic pathways. Iron imbalance leads to the most frequent human nutritional deficiency in the world. Adaptation to iron limitation requires a global reorganization of the cell...

Descripción completa

Detalles Bibliográficos
Autores principales: Romero, Antonia M., Martínez-Pastor, Mar, Du, Gang, Solé, Carme, Carlos, María, Vergara, Sandra V., Sanvisens, Nerea, Wohlschlegel, James A., Toczyski, David P., Posas, Francesc, de Nadal, Eulàlia, Martínez-Pastor, María T., Thiele, Dennis J., Puig, Sergi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6143738/
https://www.ncbi.nlm.nih.gov/pubmed/30228242
http://dx.doi.org/10.1128/mBio.01694-18
_version_ 1783356029646405632
author Romero, Antonia M.
Martínez-Pastor, Mar
Du, Gang
Solé, Carme
Carlos, María
Vergara, Sandra V.
Sanvisens, Nerea
Wohlschlegel, James A.
Toczyski, David P.
Posas, Francesc
de Nadal, Eulàlia
Martínez-Pastor, María T.
Thiele, Dennis J.
Puig, Sergi
author_facet Romero, Antonia M.
Martínez-Pastor, Mar
Du, Gang
Solé, Carme
Carlos, María
Vergara, Sandra V.
Sanvisens, Nerea
Wohlschlegel, James A.
Toczyski, David P.
Posas, Francesc
de Nadal, Eulàlia
Martínez-Pastor, María T.
Thiele, Dennis J.
Puig, Sergi
author_sort Romero, Antonia M.
collection PubMed
description Iron is an indispensable micronutrient for all eukaryotic organisms due to its participation as a redox cofactor in many metabolic pathways. Iron imbalance leads to the most frequent human nutritional deficiency in the world. Adaptation to iron limitation requires a global reorganization of the cellular metabolism directed to prioritize iron utilization for essential processes. In response to iron scarcity, the conserved Saccharomyces cerevisiae mRNA-binding protein Cth2, which belongs to the tristetraprolin family of tandem zinc finger proteins, coordinates a global remodeling of the cellular metabolism by promoting the degradation of multiple mRNAs encoding highly iron-consuming proteins. In this work, we identify a critical mechanism for the degradation of Cth2 protein during the adaptation to iron deficiency. Phosphorylation of a patch of Cth2 serine residues within its amino-terminal region facilitates recognition by the SCF(Grr1) ubiquitin ligase complex, accelerating Cth2 turnover by the proteasome. When Cth2 degradation is impaired by either mutagenesis of the Cth2 serine residues or deletion of GRR1, the levels of Cth2 rise and abrogate growth in iron-depleted conditions. Finally, we uncover that the casein kinase Hrr25 phosphorylates and promotes Cth2 destabilization. These results reveal a sophisticated posttranslational regulatory pathway necessary for the adaptation to iron depletion.
format Online
Article
Text
id pubmed-6143738
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher American Society for Microbiology
record_format MEDLINE/PubMed
spelling pubmed-61437382018-09-21 Phosphorylation and Proteasome Recognition of the mRNA-Binding Protein Cth2 Facilitates Yeast Adaptation to Iron Deficiency Romero, Antonia M. Martínez-Pastor, Mar Du, Gang Solé, Carme Carlos, María Vergara, Sandra V. Sanvisens, Nerea Wohlschlegel, James A. Toczyski, David P. Posas, Francesc de Nadal, Eulàlia Martínez-Pastor, María T. Thiele, Dennis J. Puig, Sergi mBio Research Article Iron is an indispensable micronutrient for all eukaryotic organisms due to its participation as a redox cofactor in many metabolic pathways. Iron imbalance leads to the most frequent human nutritional deficiency in the world. Adaptation to iron limitation requires a global reorganization of the cellular metabolism directed to prioritize iron utilization for essential processes. In response to iron scarcity, the conserved Saccharomyces cerevisiae mRNA-binding protein Cth2, which belongs to the tristetraprolin family of tandem zinc finger proteins, coordinates a global remodeling of the cellular metabolism by promoting the degradation of multiple mRNAs encoding highly iron-consuming proteins. In this work, we identify a critical mechanism for the degradation of Cth2 protein during the adaptation to iron deficiency. Phosphorylation of a patch of Cth2 serine residues within its amino-terminal region facilitates recognition by the SCF(Grr1) ubiquitin ligase complex, accelerating Cth2 turnover by the proteasome. When Cth2 degradation is impaired by either mutagenesis of the Cth2 serine residues or deletion of GRR1, the levels of Cth2 rise and abrogate growth in iron-depleted conditions. Finally, we uncover that the casein kinase Hrr25 phosphorylates and promotes Cth2 destabilization. These results reveal a sophisticated posttranslational regulatory pathway necessary for the adaptation to iron depletion. American Society for Microbiology 2018-09-18 /pmc/articles/PMC6143738/ /pubmed/30228242 http://dx.doi.org/10.1128/mBio.01694-18 Text en Copyright © 2018 Romero et al. https://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Romero, Antonia M.
Martínez-Pastor, Mar
Du, Gang
Solé, Carme
Carlos, María
Vergara, Sandra V.
Sanvisens, Nerea
Wohlschlegel, James A.
Toczyski, David P.
Posas, Francesc
de Nadal, Eulàlia
Martínez-Pastor, María T.
Thiele, Dennis J.
Puig, Sergi
Phosphorylation and Proteasome Recognition of the mRNA-Binding Protein Cth2 Facilitates Yeast Adaptation to Iron Deficiency
title Phosphorylation and Proteasome Recognition of the mRNA-Binding Protein Cth2 Facilitates Yeast Adaptation to Iron Deficiency
title_full Phosphorylation and Proteasome Recognition of the mRNA-Binding Protein Cth2 Facilitates Yeast Adaptation to Iron Deficiency
title_fullStr Phosphorylation and Proteasome Recognition of the mRNA-Binding Protein Cth2 Facilitates Yeast Adaptation to Iron Deficiency
title_full_unstemmed Phosphorylation and Proteasome Recognition of the mRNA-Binding Protein Cth2 Facilitates Yeast Adaptation to Iron Deficiency
title_short Phosphorylation and Proteasome Recognition of the mRNA-Binding Protein Cth2 Facilitates Yeast Adaptation to Iron Deficiency
title_sort phosphorylation and proteasome recognition of the mrna-binding protein cth2 facilitates yeast adaptation to iron deficiency
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6143738/
https://www.ncbi.nlm.nih.gov/pubmed/30228242
http://dx.doi.org/10.1128/mBio.01694-18
work_keys_str_mv AT romeroantoniam phosphorylationandproteasomerecognitionofthemrnabindingproteincth2facilitatesyeastadaptationtoirondeficiency
AT martinezpastormar phosphorylationandproteasomerecognitionofthemrnabindingproteincth2facilitatesyeastadaptationtoirondeficiency
AT dugang phosphorylationandproteasomerecognitionofthemrnabindingproteincth2facilitatesyeastadaptationtoirondeficiency
AT solecarme phosphorylationandproteasomerecognitionofthemrnabindingproteincth2facilitatesyeastadaptationtoirondeficiency
AT carlosmaria phosphorylationandproteasomerecognitionofthemrnabindingproteincth2facilitatesyeastadaptationtoirondeficiency
AT vergarasandrav phosphorylationandproteasomerecognitionofthemrnabindingproteincth2facilitatesyeastadaptationtoirondeficiency
AT sanvisensnerea phosphorylationandproteasomerecognitionofthemrnabindingproteincth2facilitatesyeastadaptationtoirondeficiency
AT wohlschlegeljamesa phosphorylationandproteasomerecognitionofthemrnabindingproteincth2facilitatesyeastadaptationtoirondeficiency
AT toczyskidavidp phosphorylationandproteasomerecognitionofthemrnabindingproteincth2facilitatesyeastadaptationtoirondeficiency
AT posasfrancesc phosphorylationandproteasomerecognitionofthemrnabindingproteincth2facilitatesyeastadaptationtoirondeficiency
AT denadaleulalia phosphorylationandproteasomerecognitionofthemrnabindingproteincth2facilitatesyeastadaptationtoirondeficiency
AT martinezpastormariat phosphorylationandproteasomerecognitionofthemrnabindingproteincth2facilitatesyeastadaptationtoirondeficiency
AT thieledennisj phosphorylationandproteasomerecognitionofthemrnabindingproteincth2facilitatesyeastadaptationtoirondeficiency
AT puigsergi phosphorylationandproteasomerecognitionofthemrnabindingproteincth2facilitatesyeastadaptationtoirondeficiency