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Archaeal Signal Transduction: Impact of Protein Phosphatase Deletions on Cell Size, Motility, and Energy Metabolism in Sulfolobus acidocaldarius

In this study, the in vitro and in vivo functions of the only two identified protein phosphatases, Saci-PTP and Saci-PP2A, in the crenarchaeal model organism Sulfolobus acidocaldarius were investigated. Biochemical characterization revealed that Saci-PTP is a dual-specific phosphatase (against pSer/...

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Autores principales: Reimann, Julia, Esser, Dominik, Orell, Alvaro, Amman, Fabian, Pham, Trong Khoa, Noirel, Josselin, Lindås, Ann-Christin, Bernander, Rolf, Wright, Phillip C., Siebers, Bettina, Albers, Sonja-Verena
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The American Society for Biochemistry and Molecular Biology 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3861733/
https://www.ncbi.nlm.nih.gov/pubmed/24078887
http://dx.doi.org/10.1074/mcp.M113.027375
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author Reimann, Julia
Esser, Dominik
Orell, Alvaro
Amman, Fabian
Pham, Trong Khoa
Noirel, Josselin
Lindås, Ann-Christin
Bernander, Rolf
Wright, Phillip C.
Siebers, Bettina
Albers, Sonja-Verena
author_facet Reimann, Julia
Esser, Dominik
Orell, Alvaro
Amman, Fabian
Pham, Trong Khoa
Noirel, Josselin
Lindås, Ann-Christin
Bernander, Rolf
Wright, Phillip C.
Siebers, Bettina
Albers, Sonja-Verena
author_sort Reimann, Julia
collection PubMed
description In this study, the in vitro and in vivo functions of the only two identified protein phosphatases, Saci-PTP and Saci-PP2A, in the crenarchaeal model organism Sulfolobus acidocaldarius were investigated. Biochemical characterization revealed that Saci-PTP is a dual-specific phosphatase (against pSer/pThr and pTyr), whereas Saci-PP2A exhibited specific pSer/pThr activity and inhibition by okadaic acid. Deletion of saci_pp2a resulted in pronounced alterations in growth, cell shape and cell size, which could be partially complemented. Transcriptome analysis of the three strains (Δsaci_ptp, Δsaci_pp2a and the MW001 parental strain) revealed 155 genes that were differentially expressed in the deletion mutants, and showed significant changes in expression of genes encoding the archaella (archaeal motility structure), components of the respiratory chain and transcriptional regulators. Phosphoproteome studies revealed 801 unique phosphoproteins in total, with an increase in identified phosphopeptides in the deletion mutants. Proteins from most functional categories were affected by phosphorylation, including components of the motility system, the respiratory chain, and regulatory proteins. In the saci_pp2a deletion mutant the up-regulation at the transcript level, as well as the observed phosphorylation pattern, resembled starvation stress responses. Hypermotility was also observed in the saci_pp2a deletion mutant. The results highlight the importance of protein phosphorylation in regulating essential cellular processes in the crenarchaeon S. acidocaldarius.
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spelling pubmed-38617332013-12-17 Archaeal Signal Transduction: Impact of Protein Phosphatase Deletions on Cell Size, Motility, and Energy Metabolism in Sulfolobus acidocaldarius Reimann, Julia Esser, Dominik Orell, Alvaro Amman, Fabian Pham, Trong Khoa Noirel, Josselin Lindås, Ann-Christin Bernander, Rolf Wright, Phillip C. Siebers, Bettina Albers, Sonja-Verena Mol Cell Proteomics Research In this study, the in vitro and in vivo functions of the only two identified protein phosphatases, Saci-PTP and Saci-PP2A, in the crenarchaeal model organism Sulfolobus acidocaldarius were investigated. Biochemical characterization revealed that Saci-PTP is a dual-specific phosphatase (against pSer/pThr and pTyr), whereas Saci-PP2A exhibited specific pSer/pThr activity and inhibition by okadaic acid. Deletion of saci_pp2a resulted in pronounced alterations in growth, cell shape and cell size, which could be partially complemented. Transcriptome analysis of the three strains (Δsaci_ptp, Δsaci_pp2a and the MW001 parental strain) revealed 155 genes that were differentially expressed in the deletion mutants, and showed significant changes in expression of genes encoding the archaella (archaeal motility structure), components of the respiratory chain and transcriptional regulators. Phosphoproteome studies revealed 801 unique phosphoproteins in total, with an increase in identified phosphopeptides in the deletion mutants. Proteins from most functional categories were affected by phosphorylation, including components of the motility system, the respiratory chain, and regulatory proteins. In the saci_pp2a deletion mutant the up-regulation at the transcript level, as well as the observed phosphorylation pattern, resembled starvation stress responses. Hypermotility was also observed in the saci_pp2a deletion mutant. The results highlight the importance of protein phosphorylation in regulating essential cellular processes in the crenarchaeon S. acidocaldarius. The American Society for Biochemistry and Molecular Biology 2013-12 2013-09-27 /pmc/articles/PMC3861733/ /pubmed/24078887 http://dx.doi.org/10.1074/mcp.M113.027375 Text en © 2013 by The American Society for Biochemistry and Molecular Biology, Inc. Author's Choice—Final version full access.
spellingShingle Research
Reimann, Julia
Esser, Dominik
Orell, Alvaro
Amman, Fabian
Pham, Trong Khoa
Noirel, Josselin
Lindås, Ann-Christin
Bernander, Rolf
Wright, Phillip C.
Siebers, Bettina
Albers, Sonja-Verena
Archaeal Signal Transduction: Impact of Protein Phosphatase Deletions on Cell Size, Motility, and Energy Metabolism in Sulfolobus acidocaldarius
title Archaeal Signal Transduction: Impact of Protein Phosphatase Deletions on Cell Size, Motility, and Energy Metabolism in Sulfolobus acidocaldarius
title_full Archaeal Signal Transduction: Impact of Protein Phosphatase Deletions on Cell Size, Motility, and Energy Metabolism in Sulfolobus acidocaldarius
title_fullStr Archaeal Signal Transduction: Impact of Protein Phosphatase Deletions on Cell Size, Motility, and Energy Metabolism in Sulfolobus acidocaldarius
title_full_unstemmed Archaeal Signal Transduction: Impact of Protein Phosphatase Deletions on Cell Size, Motility, and Energy Metabolism in Sulfolobus acidocaldarius
title_short Archaeal Signal Transduction: Impact of Protein Phosphatase Deletions on Cell Size, Motility, and Energy Metabolism in Sulfolobus acidocaldarius
title_sort archaeal signal transduction: impact of protein phosphatase deletions on cell size, motility, and energy metabolism in sulfolobus acidocaldarius
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3861733/
https://www.ncbi.nlm.nih.gov/pubmed/24078887
http://dx.doi.org/10.1074/mcp.M113.027375
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