Individual and interacting effects of pCO2 and temperature on Emiliania huxleyi calcification: study of the calcite production, the coccolith morphology and the coccosphere size

The impact of ocean acidification and increased water temperature on marine ecosystems, in particular those involving calcifying organisms, has been gradually recognised. We examined the individual and combined effects of increased p CO 2 (180 ppmV CO 2 , 380 ppmV CO 2 and 750 ppmV CO 2 correspondin...

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Published in:Biogeosciences
Main Authors: Bodt, C., Oostende, N., Harlay, J., Sabbe, K., Chou, L.
Format: Other/Unknown Material
Language:English
Published: 2018
Subjects:
Online Access:https://doi.org/10.5194/bg-7-1401-2010
https://www.biogeosciences.net/7/1401/2010/
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spelling ftcopernicus:oai:publications.copernicus.org:bg2291 2023-05-15T17:50:38+02:00 Individual and interacting effects of pCO2 and temperature on Emiliania huxleyi calcification: study of the calcite production, the coccolith morphology and the coccosphere size Bodt, C. Oostende, N. Harlay, J. Sabbe, K. Chou, L. 2018-09-27 info:eu-repo/semantics/application/pdf https://doi.org/10.5194/bg-7-1401-2010 https://www.biogeosciences.net/7/1401/2010/ eng eng info:eu-repo/grantAgreement/EC/FP7/211384 doi:10.5194/bg-7-1401-2010 https://www.biogeosciences.net/7/1401/2010/ info:eu-repo/semantics/openAccess eISSN: 1726-4189 info:eu-repo/semantics/Text 2018 ftcopernicus https://doi.org/10.5194/bg-7-1401-2010 2019-12-24T09:57:24Z The impact of ocean acidification and increased water temperature on marine ecosystems, in particular those involving calcifying organisms, has been gradually recognised. We examined the individual and combined effects of increased p CO 2 (180 ppmV CO 2 , 380 ppmV CO 2 and 750 ppmV CO 2 corresponding to past, present and future CO 2 conditions, respectively) and temperature (13 °C and 18 °C) during the exponential growth phase of the coccolithophore E. huxleyi using batch culture experiments. We showed that cellular production rate of Particulate Organic Carbon (POC) increased from the present to the future CO 2 treatments at 13 °C. A significant effect of p CO 2 and of temperature on calcification was found, manifesting itself in a lower cellular production rate of Particulate Inorganic Carbon (PIC) as well as a lower PIC:POC ratio at future CO 2 levels and at 18 °C. Coccosphere-sized particles showed a size reduction with both increasing temperature and CO 2 concentration. The influence of the different treatments on coccolith morphology was studied by categorizing SEM coccolith micrographs. The number of well-formed coccoliths decreased with increasing p CO 2 while temperature did not have a significant impact on coccolith morphology. No interacting effects of p CO 2 and temperature were observed on calcite production, coccolith morphology or on coccosphere size. Finally, our results suggest that ocean acidification might have a larger adverse impact on coccolithophorid calcification than surface water warming. Other/Unknown Material Ocean acidification Copernicus Publications: E-Journals Biogeosciences 7 5 1401 1412
institution Open Polar
collection Copernicus Publications: E-Journals
op_collection_id ftcopernicus
language English
description The impact of ocean acidification and increased water temperature on marine ecosystems, in particular those involving calcifying organisms, has been gradually recognised. We examined the individual and combined effects of increased p CO 2 (180 ppmV CO 2 , 380 ppmV CO 2 and 750 ppmV CO 2 corresponding to past, present and future CO 2 conditions, respectively) and temperature (13 °C and 18 °C) during the exponential growth phase of the coccolithophore E. huxleyi using batch culture experiments. We showed that cellular production rate of Particulate Organic Carbon (POC) increased from the present to the future CO 2 treatments at 13 °C. A significant effect of p CO 2 and of temperature on calcification was found, manifesting itself in a lower cellular production rate of Particulate Inorganic Carbon (PIC) as well as a lower PIC:POC ratio at future CO 2 levels and at 18 °C. Coccosphere-sized particles showed a size reduction with both increasing temperature and CO 2 concentration. The influence of the different treatments on coccolith morphology was studied by categorizing SEM coccolith micrographs. The number of well-formed coccoliths decreased with increasing p CO 2 while temperature did not have a significant impact on coccolith morphology. No interacting effects of p CO 2 and temperature were observed on calcite production, coccolith morphology or on coccosphere size. Finally, our results suggest that ocean acidification might have a larger adverse impact on coccolithophorid calcification than surface water warming.
format Other/Unknown Material
author Bodt, C.
Oostende, N.
Harlay, J.
Sabbe, K.
Chou, L.
spellingShingle Bodt, C.
Oostende, N.
Harlay, J.
Sabbe, K.
Chou, L.
Individual and interacting effects of pCO2 and temperature on Emiliania huxleyi calcification: study of the calcite production, the coccolith morphology and the coccosphere size
author_facet Bodt, C.
Oostende, N.
Harlay, J.
Sabbe, K.
Chou, L.
author_sort Bodt, C.
title Individual and interacting effects of pCO2 and temperature on Emiliania huxleyi calcification: study of the calcite production, the coccolith morphology and the coccosphere size
title_short Individual and interacting effects of pCO2 and temperature on Emiliania huxleyi calcification: study of the calcite production, the coccolith morphology and the coccosphere size
title_full Individual and interacting effects of pCO2 and temperature on Emiliania huxleyi calcification: study of the calcite production, the coccolith morphology and the coccosphere size
title_fullStr Individual and interacting effects of pCO2 and temperature on Emiliania huxleyi calcification: study of the calcite production, the coccolith morphology and the coccosphere size
title_full_unstemmed Individual and interacting effects of pCO2 and temperature on Emiliania huxleyi calcification: study of the calcite production, the coccolith morphology and the coccosphere size
title_sort individual and interacting effects of pco2 and temperature on emiliania huxleyi calcification: study of the calcite production, the coccolith morphology and the coccosphere size
publishDate 2018
url https://doi.org/10.5194/bg-7-1401-2010
https://www.biogeosciences.net/7/1401/2010/
genre Ocean acidification
genre_facet Ocean acidification
op_source eISSN: 1726-4189
op_relation info:eu-repo/grantAgreement/EC/FP7/211384
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https://www.biogeosciences.net/7/1401/2010/
op_rights info:eu-repo/semantics/openAccess
op_doi https://doi.org/10.5194/bg-7-1401-2010
container_title Biogeosciences
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