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Deciphering the Translation Initiation Factor 5A Modification Pathway in Halophilic Archaea

Translation initiation factor 5A (IF5A) is essential and highly conserved in Eukarya (eIF5A) and Archaea (aIF5A). The activity of IF5A requires hypusine, a posttranslational modification synthesized in Eukarya from the polyamine precursor spermidine. Intracellular polyamine analyses revealed that ag...

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Autores principales: Prunetti, Laurence, Graf, Michael, Blaby, Ian K., Peil, Lauri, Makkay, Andrea M., Starosta, Agata L., Papke, R. Thane, Oshima, Tairo, Wilson, Daniel N., de Crécy-Lagard, Valérie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi Publishing Corporation 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5178350/
https://www.ncbi.nlm.nih.gov/pubmed/28053595
http://dx.doi.org/10.1155/2016/7316725
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author Prunetti, Laurence
Graf, Michael
Blaby, Ian K.
Peil, Lauri
Makkay, Andrea M.
Starosta, Agata L.
Papke, R. Thane
Oshima, Tairo
Wilson, Daniel N.
de Crécy-Lagard, Valérie
author_facet Prunetti, Laurence
Graf, Michael
Blaby, Ian K.
Peil, Lauri
Makkay, Andrea M.
Starosta, Agata L.
Papke, R. Thane
Oshima, Tairo
Wilson, Daniel N.
de Crécy-Lagard, Valérie
author_sort Prunetti, Laurence
collection PubMed
description Translation initiation factor 5A (IF5A) is essential and highly conserved in Eukarya (eIF5A) and Archaea (aIF5A). The activity of IF5A requires hypusine, a posttranslational modification synthesized in Eukarya from the polyamine precursor spermidine. Intracellular polyamine analyses revealed that agmatine and cadaverine were the main polyamines produced in Haloferax volcanii in minimal medium, raising the question of how hypusine is synthesized in this halophilic Archaea. Metabolic reconstruction led to a tentative picture of polyamine metabolism and aIF5A modification in Hfx. volcanii that was experimentally tested. Analysis of aIF5A from Hfx. volcanii by LC-MS/MS revealed it was exclusively deoxyhypusinylated. Genetic studies confirmed the role of the predicted arginine decarboxylase gene (HVO_1958) in agmatine synthesis. The agmatinase-like gene (HVO_2299) was found to be essential, consistent with a role in aIF5A modification predicted by physical clustering evidence. Recombinant deoxyhypusine synthase (DHS) from S. cerevisiae was shown to transfer 4-aminobutyl moiety from spermidine to aIF5A from Hfx. volcanii in vitro. However, at least under conditions tested, this transfer was not observed with the Hfx. volcanii DHS. Furthermore, the growth of Hfx. volcanii was not inhibited by the classical DHS inhibitor GC7. We propose a model of deoxyhypusine synthesis in Hfx. volcanii that differs from the canonical eukaryotic pathway, paving the way for further studies.
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spelling pubmed-51783502017-01-04 Deciphering the Translation Initiation Factor 5A Modification Pathway in Halophilic Archaea Prunetti, Laurence Graf, Michael Blaby, Ian K. Peil, Lauri Makkay, Andrea M. Starosta, Agata L. Papke, R. Thane Oshima, Tairo Wilson, Daniel N. de Crécy-Lagard, Valérie Archaea Research Article Translation initiation factor 5A (IF5A) is essential and highly conserved in Eukarya (eIF5A) and Archaea (aIF5A). The activity of IF5A requires hypusine, a posttranslational modification synthesized in Eukarya from the polyamine precursor spermidine. Intracellular polyamine analyses revealed that agmatine and cadaverine were the main polyamines produced in Haloferax volcanii in minimal medium, raising the question of how hypusine is synthesized in this halophilic Archaea. Metabolic reconstruction led to a tentative picture of polyamine metabolism and aIF5A modification in Hfx. volcanii that was experimentally tested. Analysis of aIF5A from Hfx. volcanii by LC-MS/MS revealed it was exclusively deoxyhypusinylated. Genetic studies confirmed the role of the predicted arginine decarboxylase gene (HVO_1958) in agmatine synthesis. The agmatinase-like gene (HVO_2299) was found to be essential, consistent with a role in aIF5A modification predicted by physical clustering evidence. Recombinant deoxyhypusine synthase (DHS) from S. cerevisiae was shown to transfer 4-aminobutyl moiety from spermidine to aIF5A from Hfx. volcanii in vitro. However, at least under conditions tested, this transfer was not observed with the Hfx. volcanii DHS. Furthermore, the growth of Hfx. volcanii was not inhibited by the classical DHS inhibitor GC7. We propose a model of deoxyhypusine synthesis in Hfx. volcanii that differs from the canonical eukaryotic pathway, paving the way for further studies. Hindawi Publishing Corporation 2016-12-08 /pmc/articles/PMC5178350/ /pubmed/28053595 http://dx.doi.org/10.1155/2016/7316725 Text en Copyright © 2016 Laurence Prunetti et al. https://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Prunetti, Laurence
Graf, Michael
Blaby, Ian K.
Peil, Lauri
Makkay, Andrea M.
Starosta, Agata L.
Papke, R. Thane
Oshima, Tairo
Wilson, Daniel N.
de Crécy-Lagard, Valérie
Deciphering the Translation Initiation Factor 5A Modification Pathway in Halophilic Archaea
title Deciphering the Translation Initiation Factor 5A Modification Pathway in Halophilic Archaea
title_full Deciphering the Translation Initiation Factor 5A Modification Pathway in Halophilic Archaea
title_fullStr Deciphering the Translation Initiation Factor 5A Modification Pathway in Halophilic Archaea
title_full_unstemmed Deciphering the Translation Initiation Factor 5A Modification Pathway in Halophilic Archaea
title_short Deciphering the Translation Initiation Factor 5A Modification Pathway in Halophilic Archaea
title_sort deciphering the translation initiation factor 5a modification pathway in halophilic archaea
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5178350/
https://www.ncbi.nlm.nih.gov/pubmed/28053595
http://dx.doi.org/10.1155/2016/7316725
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