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The marine bacterium Phaeobacter inhibens secures external ammonium by rapid buildup of intracellular nitrogen stocks

Reduced nitrogen species are key nutrients for biological productivity in the oceans. Ammonium is often present in low and growth-limiting concentrations, albeit peaks occur during collapse of algal blooms or via input from deep sea upwelling and riverine inflow. Autotrophic phytoplankton exploit am...

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Autores principales: Trautwein, Kathleen, Hensler, Michael, Wiegmann, Katharina, Skorubskaya, Ekaterina, Wöhlbrand, Lars, Wünsch, Daniel, Hinrichs, Christina, Feenders, Christoph, Müller, Constanze, Schell, Kristina, Ruppersberg, Hanna, Vagts, Jannes, Koßmehl, Sebastian, Steinbüchel, Alexander, Schmidt-Kopplin, Philippe, Wilkes, Heinz, Hillebrand, Helmut, Blasius, Bernd, Schomburg, Dietmar, Rabus, Ralf
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6122490/
https://www.ncbi.nlm.nih.gov/pubmed/30124819
http://dx.doi.org/10.1093/femsec/fiy154
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author Trautwein, Kathleen
Hensler, Michael
Wiegmann, Katharina
Skorubskaya, Ekaterina
Wöhlbrand, Lars
Wünsch, Daniel
Hinrichs, Christina
Feenders, Christoph
Müller, Constanze
Schell, Kristina
Ruppersberg, Hanna
Vagts, Jannes
Koßmehl, Sebastian
Steinbüchel, Alexander
Schmidt-Kopplin, Philippe
Wilkes, Heinz
Hillebrand, Helmut
Blasius, Bernd
Schomburg, Dietmar
Rabus, Ralf
author_facet Trautwein, Kathleen
Hensler, Michael
Wiegmann, Katharina
Skorubskaya, Ekaterina
Wöhlbrand, Lars
Wünsch, Daniel
Hinrichs, Christina
Feenders, Christoph
Müller, Constanze
Schell, Kristina
Ruppersberg, Hanna
Vagts, Jannes
Koßmehl, Sebastian
Steinbüchel, Alexander
Schmidt-Kopplin, Philippe
Wilkes, Heinz
Hillebrand, Helmut
Blasius, Bernd
Schomburg, Dietmar
Rabus, Ralf
author_sort Trautwein, Kathleen
collection PubMed
description Reduced nitrogen species are key nutrients for biological productivity in the oceans. Ammonium is often present in low and growth-limiting concentrations, albeit peaks occur during collapse of algal blooms or via input from deep sea upwelling and riverine inflow. Autotrophic phytoplankton exploit ammonium peaks by storing nitrogen intracellularly. In contrast, the strategy of heterotrophic bacterioplankton to acquire ammonium is less well understood. This study revealed the marine bacterium Phaeobacter inhibens DSM 17395, a Roseobacter group member, to have already depleted the external ammonium when only ∼⅓ of the ultimately attained biomass is formed. This was paralleled by a three-fold increase in cellular nitrogen levels and rapid buildup of various nitrogen-containing intracellular metabolites (and enzymes for their biosynthesis) and biopolymers (DNA, RNA and proteins). Moreover, nitrogen-rich cells secreted potential RTX proteins and the antibiotic tropodithietic acid, perhaps to competitively secure pulses of external ammonium and to protect themselves from predation. This complex response may ensure growing cells and their descendants exclusive provision with internal nitrogen stocks. This nutritional strategy appears prevalent also in other roseobacters from distant geographical provenances and could provide a new perspective on the distribution of reduced nitrogen in marine environments, i.e. temporary accumulation in bacterioplankton cells.
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spelling pubmed-61224902018-09-06 The marine bacterium Phaeobacter inhibens secures external ammonium by rapid buildup of intracellular nitrogen stocks Trautwein, Kathleen Hensler, Michael Wiegmann, Katharina Skorubskaya, Ekaterina Wöhlbrand, Lars Wünsch, Daniel Hinrichs, Christina Feenders, Christoph Müller, Constanze Schell, Kristina Ruppersberg, Hanna Vagts, Jannes Koßmehl, Sebastian Steinbüchel, Alexander Schmidt-Kopplin, Philippe Wilkes, Heinz Hillebrand, Helmut Blasius, Bernd Schomburg, Dietmar Rabus, Ralf FEMS Microbiol Ecol Research Article Reduced nitrogen species are key nutrients for biological productivity in the oceans. Ammonium is often present in low and growth-limiting concentrations, albeit peaks occur during collapse of algal blooms or via input from deep sea upwelling and riverine inflow. Autotrophic phytoplankton exploit ammonium peaks by storing nitrogen intracellularly. In contrast, the strategy of heterotrophic bacterioplankton to acquire ammonium is less well understood. This study revealed the marine bacterium Phaeobacter inhibens DSM 17395, a Roseobacter group member, to have already depleted the external ammonium when only ∼⅓ of the ultimately attained biomass is formed. This was paralleled by a three-fold increase in cellular nitrogen levels and rapid buildup of various nitrogen-containing intracellular metabolites (and enzymes for their biosynthesis) and biopolymers (DNA, RNA and proteins). Moreover, nitrogen-rich cells secreted potential RTX proteins and the antibiotic tropodithietic acid, perhaps to competitively secure pulses of external ammonium and to protect themselves from predation. This complex response may ensure growing cells and their descendants exclusive provision with internal nitrogen stocks. This nutritional strategy appears prevalent also in other roseobacters from distant geographical provenances and could provide a new perspective on the distribution of reduced nitrogen in marine environments, i.e. temporary accumulation in bacterioplankton cells. Oxford University Press 2018-08-17 /pmc/articles/PMC6122490/ /pubmed/30124819 http://dx.doi.org/10.1093/femsec/fiy154 Text en © FEMS 2018. http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial-NoDerivs licence (http://creativecommons.org/licenses/by-nc-nd/4.0/), which permits non-commercial reproduction and distribution of the work, in any medium, provided the original work is not altered or transformed in any way, and that the work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Research Article
Trautwein, Kathleen
Hensler, Michael
Wiegmann, Katharina
Skorubskaya, Ekaterina
Wöhlbrand, Lars
Wünsch, Daniel
Hinrichs, Christina
Feenders, Christoph
Müller, Constanze
Schell, Kristina
Ruppersberg, Hanna
Vagts, Jannes
Koßmehl, Sebastian
Steinbüchel, Alexander
Schmidt-Kopplin, Philippe
Wilkes, Heinz
Hillebrand, Helmut
Blasius, Bernd
Schomburg, Dietmar
Rabus, Ralf
The marine bacterium Phaeobacter inhibens secures external ammonium by rapid buildup of intracellular nitrogen stocks
title The marine bacterium Phaeobacter inhibens secures external ammonium by rapid buildup of intracellular nitrogen stocks
title_full The marine bacterium Phaeobacter inhibens secures external ammonium by rapid buildup of intracellular nitrogen stocks
title_fullStr The marine bacterium Phaeobacter inhibens secures external ammonium by rapid buildup of intracellular nitrogen stocks
title_full_unstemmed The marine bacterium Phaeobacter inhibens secures external ammonium by rapid buildup of intracellular nitrogen stocks
title_short The marine bacterium Phaeobacter inhibens secures external ammonium by rapid buildup of intracellular nitrogen stocks
title_sort marine bacterium phaeobacter inhibens secures external ammonium by rapid buildup of intracellular nitrogen stocks
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6122490/
https://www.ncbi.nlm.nih.gov/pubmed/30124819
http://dx.doi.org/10.1093/femsec/fiy154
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