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Cation Homeostasis: Coordinate Regulation of Polyamine and Magnesium Levels in Salmonella

Polyamines are organic cations that are important in all domains of life. Here, we show that in Salmonella, polyamine levels and Mg(2+) levels are coordinately regulated and that this regulation is critical for viability under both low and high concentrations of polyamines. Upon Mg(2+) starvation, p...

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Autores principales: Iwadate, Yumi, Golubeva, Yekaterina A., Slauch, James M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9972920/
https://www.ncbi.nlm.nih.gov/pubmed/36475749
http://dx.doi.org/10.1128/mbio.02698-22
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author Iwadate, Yumi
Golubeva, Yekaterina A.
Slauch, James M.
author_facet Iwadate, Yumi
Golubeva, Yekaterina A.
Slauch, James M.
author_sort Iwadate, Yumi
collection PubMed
description Polyamines are organic cations that are important in all domains of life. Here, we show that in Salmonella, polyamine levels and Mg(2+) levels are coordinately regulated and that this regulation is critical for viability under both low and high concentrations of polyamines. Upon Mg(2+) starvation, polyamine synthesis is induced, as is the production of the high-affinity Mg(2+) transporters MgtA and MgtB. Either polyamine synthesis or Mg(2+) transport is required to maintain viability. Mutants lacking the polyamine exporter PaeA, the expression of which is induced by PhoPQ in response to low Mg(2+), lose viability in the stationary phase. This lethality is suppressed by blocking either polyamine synthesis or Mg(2+) transport, suggesting that once Mg(2+) levels are reestablished, the excess polyamines must be excreted. Thus, it is the relative levels of both Mg(2+) and polyamines that are regulated to maintain viability. Indeed, sensitivity to high concentrations of polyamines is proportional to the Mg(2+) levels in the medium. These results are recapitulated during infection. Polyamine synthesis mutants are attenuated in a mouse model of systemic infection, as are strains lacking the MgtB Mg(2+) transporter. The loss of MgtB in the synthesis mutant background confers a synthetic phenotype, confirming that Mg(2+) and polyamines are required for the same process(es). Mutants lacking PaeA are also attenuated, but deleting paeA has no phenotype in a polyamine synthesis mutant background. These data support the idea that the cell coordinately controls both the polyamine and Mg(2+) concentrations to maintain overall cation homeostasis, which is critical for survival in the macrophage phagosome.
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spelling pubmed-99729202023-03-01 Cation Homeostasis: Coordinate Regulation of Polyamine and Magnesium Levels in Salmonella Iwadate, Yumi Golubeva, Yekaterina A. Slauch, James M. mBio Research Article Polyamines are organic cations that are important in all domains of life. Here, we show that in Salmonella, polyamine levels and Mg(2+) levels are coordinately regulated and that this regulation is critical for viability under both low and high concentrations of polyamines. Upon Mg(2+) starvation, polyamine synthesis is induced, as is the production of the high-affinity Mg(2+) transporters MgtA and MgtB. Either polyamine synthesis or Mg(2+) transport is required to maintain viability. Mutants lacking the polyamine exporter PaeA, the expression of which is induced by PhoPQ in response to low Mg(2+), lose viability in the stationary phase. This lethality is suppressed by blocking either polyamine synthesis or Mg(2+) transport, suggesting that once Mg(2+) levels are reestablished, the excess polyamines must be excreted. Thus, it is the relative levels of both Mg(2+) and polyamines that are regulated to maintain viability. Indeed, sensitivity to high concentrations of polyamines is proportional to the Mg(2+) levels in the medium. These results are recapitulated during infection. Polyamine synthesis mutants are attenuated in a mouse model of systemic infection, as are strains lacking the MgtB Mg(2+) transporter. The loss of MgtB in the synthesis mutant background confers a synthetic phenotype, confirming that Mg(2+) and polyamines are required for the same process(es). Mutants lacking PaeA are also attenuated, but deleting paeA has no phenotype in a polyamine synthesis mutant background. These data support the idea that the cell coordinately controls both the polyamine and Mg(2+) concentrations to maintain overall cation homeostasis, which is critical for survival in the macrophage phagosome. American Society for Microbiology 2022-12-07 /pmc/articles/PMC9972920/ /pubmed/36475749 http://dx.doi.org/10.1128/mbio.02698-22 Text en Copyright © 2022 Iwadate 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
Iwadate, Yumi
Golubeva, Yekaterina A.
Slauch, James M.
Cation Homeostasis: Coordinate Regulation of Polyamine and Magnesium Levels in Salmonella
title Cation Homeostasis: Coordinate Regulation of Polyamine and Magnesium Levels in Salmonella
title_full Cation Homeostasis: Coordinate Regulation of Polyamine and Magnesium Levels in Salmonella
title_fullStr Cation Homeostasis: Coordinate Regulation of Polyamine and Magnesium Levels in Salmonella
title_full_unstemmed Cation Homeostasis: Coordinate Regulation of Polyamine and Magnesium Levels in Salmonella
title_short Cation Homeostasis: Coordinate Regulation of Polyamine and Magnesium Levels in Salmonella
title_sort cation homeostasis: coordinate regulation of polyamine and magnesium levels in salmonella
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9972920/
https://www.ncbi.nlm.nih.gov/pubmed/36475749
http://dx.doi.org/10.1128/mbio.02698-22
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