Growth of the coccolithophore <i>Emiliania huxleyi</i> in light- and nutrient-limited batch reactors: relevance for the BIOSOPE deep ecological niche of coccolithophores

Coccolithophores are unicellular calcifying marine algae that play an important role in the oceanic carbon cycle via their cellular processes of photosynthesis (a CO<sub>2</sub> sink) and calcification (a CO<sub>2</sub> source). In contrast to the well-studied, surface-water...

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Main Authors: L. Perrin, I. Probert, G. Langer, G. Aloisi
Format: Article
Language:English
Published: Copernicus Publications 2016-11-01
Series:Biogeosciences
Online Access:http://www.biogeosciences.net/13/5983/2016/bg-13-5983-2016.pdf
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author L. Perrin
I. Probert
G. Langer
G. Aloisi
author_facet L. Perrin
I. Probert
G. Langer
G. Aloisi
author_sort L. Perrin
collection DOAJ
description Coccolithophores are unicellular calcifying marine algae that play an important role in the oceanic carbon cycle via their cellular processes of photosynthesis (a CO<sub>2</sub> sink) and calcification (a CO<sub>2</sub> source). In contrast to the well-studied, surface-water coccolithophore blooms visible from satellites, the lower photic zone is a poorly known but potentially important ecological niche for coccolithophores in terms of primary production and carbon export to the deep ocean. In this study, the physiological responses of an <i>Emiliania huxleyi</i> strain to conditions simulating the deep niche in the oligotrophic gyres along the BIOSOPE transect in the South Pacific Gyre were investigated. We carried out batch culture experiments with an <i>E. huxleyi</i> strain isolated from the BIOSOPE transect, reproducing the in situ conditions of light and nutrient (nitrate and phosphate) limitation. By simulating coccolithophore growth using an internal stores (Droop) model, we were able to constrain fundamental physiological parameters for this <i>E. huxleyi</i> strain. We show that simple batch experiments, in conjunction with physiological modelling, can provide reliable estimates of fundamental physiological parameters for <i>E. huxleyi</i> that are usually obtained experimentally in more time-consuming and costly chemostat experiments. The combination of culture experiments, physiological modelling and in situ data from the BIOSOPE cruise show that <i>E. huxleyi</i> growth in the deep BIOSOPE niche is limited by availability of light and nitrate. This study contributes more widely to the understanding of <i>E. huxleyi</i> physiology and behaviour in a low-light and oligotrophic environment of the ocean.
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spelling doaj.art-166c56b6d0da4c0990f34af7ecedbaf52022-12-21T18:48:18ZengCopernicus PublicationsBiogeosciences1726-41701726-41892016-11-0113215983600110.5194/bg-13-5983-2016Growth of the coccolithophore <i>Emiliania huxleyi</i> in light- and nutrient-limited batch reactors: relevance for the BIOSOPE deep ecological niche of coccolithophoresL. Perrin0I. Probert1G. Langer2G. Aloisi3Sorbonne Universités, UPMC Univ. Paris 06-CNRS-IRD-MNHN, LOCEAN-IPSL, 75252 Paris, FranceCNRS-UPMC Université, Paris 06 FR2424, Roscoff Culture Collection, Station Biologique de Roscoff, 29680 Roscoff, FranceThe Marine Biological Association of the United Kingdom, The Laboratory, Citadel Hill, Plymouth, Devon, PL1 2PB, UKLOCEAN, UMR 7159, CNRS-UPMC-IRD-MNHN, 75252 Paris, FranceCoccolithophores are unicellular calcifying marine algae that play an important role in the oceanic carbon cycle via their cellular processes of photosynthesis (a CO<sub>2</sub> sink) and calcification (a CO<sub>2</sub> source). In contrast to the well-studied, surface-water coccolithophore blooms visible from satellites, the lower photic zone is a poorly known but potentially important ecological niche for coccolithophores in terms of primary production and carbon export to the deep ocean. In this study, the physiological responses of an <i>Emiliania huxleyi</i> strain to conditions simulating the deep niche in the oligotrophic gyres along the BIOSOPE transect in the South Pacific Gyre were investigated. We carried out batch culture experiments with an <i>E. huxleyi</i> strain isolated from the BIOSOPE transect, reproducing the in situ conditions of light and nutrient (nitrate and phosphate) limitation. By simulating coccolithophore growth using an internal stores (Droop) model, we were able to constrain fundamental physiological parameters for this <i>E. huxleyi</i> strain. We show that simple batch experiments, in conjunction with physiological modelling, can provide reliable estimates of fundamental physiological parameters for <i>E. huxleyi</i> that are usually obtained experimentally in more time-consuming and costly chemostat experiments. The combination of culture experiments, physiological modelling and in situ data from the BIOSOPE cruise show that <i>E. huxleyi</i> growth in the deep BIOSOPE niche is limited by availability of light and nitrate. This study contributes more widely to the understanding of <i>E. huxleyi</i> physiology and behaviour in a low-light and oligotrophic environment of the ocean.http://www.biogeosciences.net/13/5983/2016/bg-13-5983-2016.pdf
spellingShingle L. Perrin
I. Probert
G. Langer
G. Aloisi
Growth of the coccolithophore <i>Emiliania huxleyi</i> in light- and nutrient-limited batch reactors: relevance for the BIOSOPE deep ecological niche of coccolithophores
Biogeosciences
title Growth of the coccolithophore <i>Emiliania huxleyi</i> in light- and nutrient-limited batch reactors: relevance for the BIOSOPE deep ecological niche of coccolithophores
title_full Growth of the coccolithophore <i>Emiliania huxleyi</i> in light- and nutrient-limited batch reactors: relevance for the BIOSOPE deep ecological niche of coccolithophores
title_fullStr Growth of the coccolithophore <i>Emiliania huxleyi</i> in light- and nutrient-limited batch reactors: relevance for the BIOSOPE deep ecological niche of coccolithophores
title_full_unstemmed Growth of the coccolithophore <i>Emiliania huxleyi</i> in light- and nutrient-limited batch reactors: relevance for the BIOSOPE deep ecological niche of coccolithophores
title_short Growth of the coccolithophore <i>Emiliania huxleyi</i> in light- and nutrient-limited batch reactors: relevance for the BIOSOPE deep ecological niche of coccolithophores
title_sort growth of the coccolithophore i emiliania huxleyi i in light and nutrient limited batch reactors relevance for the biosope deep ecological niche of coccolithophores
url http://www.biogeosciences.net/13/5983/2016/bg-13-5983-2016.pdf
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AT glanger growthofthecoccolithophoreiemilianiahuxleyiiinlightandnutrientlimitedbatchreactorsrelevanceforthebiosopedeepecologicalnicheofcoccolithophores
AT galoisi growthofthecoccolithophoreiemilianiahuxleyiiinlightandnutrientlimitedbatchreactorsrelevanceforthebiosopedeepecologicalnicheofcoccolithophores