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The endosymbiont of Epithemia clementina is specialized for nitrogen fixation within a photosynthetic eukaryote

Epithemia spp. diatoms contain obligate, nitrogen-fixing endosymbionts, or “diazoplasts”, derived from cyanobacteria. These algae are a rare example of photosynthetic eukaryotes that have successfully coupled oxygenic photosynthesis with oxygen-sensitive nitrogenase activity. Here, we report a newly...

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Autores principales: Moulin, Solène L.Y., Frail, Sarah, Doenier, Jon, Braukmann, Thomas, Yeh, Ellen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10103950/
https://www.ncbi.nlm.nih.gov/pubmed/37066385
http://dx.doi.org/10.1101/2023.03.08.531752
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author Moulin, Solène L.Y.
Frail, Sarah
Doenier, Jon
Braukmann, Thomas
Yeh, Ellen
author_facet Moulin, Solène L.Y.
Frail, Sarah
Doenier, Jon
Braukmann, Thomas
Yeh, Ellen
author_sort Moulin, Solène L.Y.
collection PubMed
description Epithemia spp. diatoms contain obligate, nitrogen-fixing endosymbionts, or “diazoplasts”, derived from cyanobacteria. These algae are a rare example of photosynthetic eukaryotes that have successfully coupled oxygenic photosynthesis with oxygen-sensitive nitrogenase activity. Here, we report a newly-isolated species, E. clementina, as a model to investigate endosymbiotic acquisition of nitrogen fixation. To detect the metabolic changes associated with endosymbiotic specialization, we compared nitrogen fixation, associated carbon and nitrogen metabolism, and their regulatory pathways in the Epithemia diazoplast with its close, free-living cyanobacterial relative, Crocosphaera subtropica. Unlike C. subtropica, we show that nitrogenase activity in the diazoplast is concurrent with, and even dependent on, host photosynthesis and no longer associated with cyanobacterial glycogen storage suggesting carbohydrates are imported from the host diatom. Carbohydrate catabolism in the diazoplast indicates that the oxidative pentose pathway and oxidative phosphorylation, in concert, generates reducing equivalents and ATP and consumes oxygen to support nitrogenase activity. In contrast to expanded nitrogenase activity, the diazoplast has diminished ability to utilize alternative nitrogen sources. Upon ammonium repletion, negative feedback regulation of nitrogen fixation was conserved, however ammonia assimilation showed paradoxical responses in the diazoplast compared with C. subtropica. The altered nitrogen regulation likely favors nitrogen transfer to the host. Our results suggest that the diazoplast is specialized for endosymbiotic nitrogen fixation. Altogether, we establish a new model for studying endosymbiosis, perform the first functional characterization of this diazotroph endosymbiosis, and identify metabolic adaptations for endosymbiotic acquisition of a critical biological function.
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spelling pubmed-101039502023-04-15 The endosymbiont of Epithemia clementina is specialized for nitrogen fixation within a photosynthetic eukaryote Moulin, Solène L.Y. Frail, Sarah Doenier, Jon Braukmann, Thomas Yeh, Ellen bioRxiv Article Epithemia spp. diatoms contain obligate, nitrogen-fixing endosymbionts, or “diazoplasts”, derived from cyanobacteria. These algae are a rare example of photosynthetic eukaryotes that have successfully coupled oxygenic photosynthesis with oxygen-sensitive nitrogenase activity. Here, we report a newly-isolated species, E. clementina, as a model to investigate endosymbiotic acquisition of nitrogen fixation. To detect the metabolic changes associated with endosymbiotic specialization, we compared nitrogen fixation, associated carbon and nitrogen metabolism, and their regulatory pathways in the Epithemia diazoplast with its close, free-living cyanobacterial relative, Crocosphaera subtropica. Unlike C. subtropica, we show that nitrogenase activity in the diazoplast is concurrent with, and even dependent on, host photosynthesis and no longer associated with cyanobacterial glycogen storage suggesting carbohydrates are imported from the host diatom. Carbohydrate catabolism in the diazoplast indicates that the oxidative pentose pathway and oxidative phosphorylation, in concert, generates reducing equivalents and ATP and consumes oxygen to support nitrogenase activity. In contrast to expanded nitrogenase activity, the diazoplast has diminished ability to utilize alternative nitrogen sources. Upon ammonium repletion, negative feedback regulation of nitrogen fixation was conserved, however ammonia assimilation showed paradoxical responses in the diazoplast compared with C. subtropica. The altered nitrogen regulation likely favors nitrogen transfer to the host. Our results suggest that the diazoplast is specialized for endosymbiotic nitrogen fixation. Altogether, we establish a new model for studying endosymbiosis, perform the first functional characterization of this diazotroph endosymbiosis, and identify metabolic adaptations for endosymbiotic acquisition of a critical biological function. Cold Spring Harbor Laboratory 2023-04-04 /pmc/articles/PMC10103950/ /pubmed/37066385 http://dx.doi.org/10.1101/2023.03.08.531752 Text en https://creativecommons.org/licenses/by-nc-nd/4.0/This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License (https://creativecommons.org/licenses/by-nc-nd/4.0/) , which allows reusers to copy and distribute the material in any medium or format in unadapted form only, for noncommercial purposes only, and only so long as attribution is given to the creator.
spellingShingle Article
Moulin, Solène L.Y.
Frail, Sarah
Doenier, Jon
Braukmann, Thomas
Yeh, Ellen
The endosymbiont of Epithemia clementina is specialized for nitrogen fixation within a photosynthetic eukaryote
title The endosymbiont of Epithemia clementina is specialized for nitrogen fixation within a photosynthetic eukaryote
title_full The endosymbiont of Epithemia clementina is specialized for nitrogen fixation within a photosynthetic eukaryote
title_fullStr The endosymbiont of Epithemia clementina is specialized for nitrogen fixation within a photosynthetic eukaryote
title_full_unstemmed The endosymbiont of Epithemia clementina is specialized for nitrogen fixation within a photosynthetic eukaryote
title_short The endosymbiont of Epithemia clementina is specialized for nitrogen fixation within a photosynthetic eukaryote
title_sort endosymbiont of epithemia clementina is specialized for nitrogen fixation within a photosynthetic eukaryote
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10103950/
https://www.ncbi.nlm.nih.gov/pubmed/37066385
http://dx.doi.org/10.1101/2023.03.08.531752
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