The ClpXP protease is dispensable for degradation of unfolded proteins in Staphylococcus aureus

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The ClpXP protease is dispensable for degradation of unfolded proteins in Staphylococcus aureus. / Stahlhut, Steen G.; Alqarzaee, Abdulelah A.; Jensen, Camilla; Fisker, Niclas S.; Pereira, Ana R.; Pinho, Mariana G.; Thomas, Vinai Chittezham; Frees, Dorte.

I: Scientific Reports, Bind 7, 11739, 2017.

Publikation: Bidrag til tidsskriftTidsskriftartikelForskningfagfællebedømt

Harvard

Stahlhut, SG, Alqarzaee, AA, Jensen, C, Fisker, NS, Pereira, AR, Pinho, MG, Thomas, VC & Frees, D 2017, 'The ClpXP protease is dispensable for degradation of unfolded proteins in Staphylococcus aureus', Scientific Reports, bind 7, 11739. https://doi.org/10.1038/s41598-017-12122-y

APA

Stahlhut, S. G., Alqarzaee, A. A., Jensen, C., Fisker, N. S., Pereira, A. R., Pinho, M. G., Thomas, V. C., & Frees, D. (2017). The ClpXP protease is dispensable for degradation of unfolded proteins in Staphylococcus aureus. Scientific Reports, 7, [11739]. https://doi.org/10.1038/s41598-017-12122-y

Vancouver

Stahlhut SG, Alqarzaee AA, Jensen C, Fisker NS, Pereira AR, Pinho MG o.a. The ClpXP protease is dispensable for degradation of unfolded proteins in Staphylococcus aureus. Scientific Reports. 2017;7. 11739. https://doi.org/10.1038/s41598-017-12122-y

Author

Stahlhut, Steen G. ; Alqarzaee, Abdulelah A. ; Jensen, Camilla ; Fisker, Niclas S. ; Pereira, Ana R. ; Pinho, Mariana G. ; Thomas, Vinai Chittezham ; Frees, Dorte. / The ClpXP protease is dispensable for degradation of unfolded proteins in Staphylococcus aureus. I: Scientific Reports. 2017 ; Bind 7.

Bibtex

@article{1717c2d9d24d46948b3e8e62183e8ff6,
title = "The ClpXP protease is dispensable for degradation of unfolded proteins in Staphylococcus aureus",
abstract = "In living cells intracellular proteolysis is crucial for protein homeostasis, and ClpP proteases are conserved between eubacteria and the organelles of eukaryotic cells. In Staphylococcus aureus, ClpP associates to the substrate specificity factors, ClpX and ClpC forming two ClpP proteases, ClpXP and ClpCP. To address how individual ClpP proteases impact cell physiology, we constructed a S. aureus mutant expressing ClpX with an I265E substitution in the ClpP recognition tripeptide of ClpX. This mutant cannot degrade established ClpXP substrates confirming that the introduced amino acid substitution abolishes ClpXP activity. Phenotypic characterization of this mutant showed that ClpXP activity controls cell size and is required for growth at low temperature. Cells expressing the ClpXI265E variant, in contrast to cells lacking ClpP, are not sensitive to heat-stress and do not accumulate protein aggregates showing that ClpXP is dispensable for degradation of unfolded proteins in S. aureus. Consistent with this finding, transcriptomic profiling revealed strong induction of genes responding to protein folding stress in cells devoid of ClpP, but not in cells lacking only ClpXP. In the latter cells, highly upregulated loci include the urease operon, the pyrimidine biosynthesis operon, the betA-betB operon, and the pathogenicity island, SaPI5, while virulence genes were dramatically down-regulated.",
author = "Stahlhut, {Steen G.} and Alqarzaee, {Abdulelah A.} and Camilla Jensen and Fisker, {Niclas S.} and Pereira, {Ana R.} and Pinho, {Mariana G.} and Thomas, {Vinai Chittezham} and Dorte Frees",
year = "2017",
doi = "10.1038/s41598-017-12122-y",
language = "English",
volume = "7",
journal = "Scientific Reports",
issn = "2045-2322",
publisher = "nature publishing group",

}

RIS

TY - JOUR

T1 - The ClpXP protease is dispensable for degradation of unfolded proteins in Staphylococcus aureus

AU - Stahlhut, Steen G.

AU - Alqarzaee, Abdulelah A.

AU - Jensen, Camilla

AU - Fisker, Niclas S.

AU - Pereira, Ana R.

AU - Pinho, Mariana G.

AU - Thomas, Vinai Chittezham

AU - Frees, Dorte

PY - 2017

Y1 - 2017

N2 - In living cells intracellular proteolysis is crucial for protein homeostasis, and ClpP proteases are conserved between eubacteria and the organelles of eukaryotic cells. In Staphylococcus aureus, ClpP associates to the substrate specificity factors, ClpX and ClpC forming two ClpP proteases, ClpXP and ClpCP. To address how individual ClpP proteases impact cell physiology, we constructed a S. aureus mutant expressing ClpX with an I265E substitution in the ClpP recognition tripeptide of ClpX. This mutant cannot degrade established ClpXP substrates confirming that the introduced amino acid substitution abolishes ClpXP activity. Phenotypic characterization of this mutant showed that ClpXP activity controls cell size and is required for growth at low temperature. Cells expressing the ClpXI265E variant, in contrast to cells lacking ClpP, are not sensitive to heat-stress and do not accumulate protein aggregates showing that ClpXP is dispensable for degradation of unfolded proteins in S. aureus. Consistent with this finding, transcriptomic profiling revealed strong induction of genes responding to protein folding stress in cells devoid of ClpP, but not in cells lacking only ClpXP. In the latter cells, highly upregulated loci include the urease operon, the pyrimidine biosynthesis operon, the betA-betB operon, and the pathogenicity island, SaPI5, while virulence genes were dramatically down-regulated.

AB - In living cells intracellular proteolysis is crucial for protein homeostasis, and ClpP proteases are conserved between eubacteria and the organelles of eukaryotic cells. In Staphylococcus aureus, ClpP associates to the substrate specificity factors, ClpX and ClpC forming two ClpP proteases, ClpXP and ClpCP. To address how individual ClpP proteases impact cell physiology, we constructed a S. aureus mutant expressing ClpX with an I265E substitution in the ClpP recognition tripeptide of ClpX. This mutant cannot degrade established ClpXP substrates confirming that the introduced amino acid substitution abolishes ClpXP activity. Phenotypic characterization of this mutant showed that ClpXP activity controls cell size and is required for growth at low temperature. Cells expressing the ClpXI265E variant, in contrast to cells lacking ClpP, are not sensitive to heat-stress and do not accumulate protein aggregates showing that ClpXP is dispensable for degradation of unfolded proteins in S. aureus. Consistent with this finding, transcriptomic profiling revealed strong induction of genes responding to protein folding stress in cells devoid of ClpP, but not in cells lacking only ClpXP. In the latter cells, highly upregulated loci include the urease operon, the pyrimidine biosynthesis operon, the betA-betB operon, and the pathogenicity island, SaPI5, while virulence genes were dramatically down-regulated.

U2 - 10.1038/s41598-017-12122-y

DO - 10.1038/s41598-017-12122-y

M3 - Journal article

C2 - 28924169

VL - 7

JO - Scientific Reports

JF - Scientific Reports

SN - 2045-2322

M1 - 11739

ER -

ID: 184289931