Combined CO2 and temperature effects on Emiliania huxleyi under severe nutrient stress

Primary production in the sunlit surface ocean is the driving force for the uptake of atmospheric CO2 and basis for its potential sequestration into the ocean s interior. As a consequence of the ongoing anthropogenic emissions of the greenhouse gas CO2, future climate will cause multiple environment...

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Bibliographic Details
Main Author: Borchard, Corinna
Other Authors: Engel, Anja, Pörtner, Hans-Otto
Format: Doctoral or Postdoctoral Thesis
Language:English
Published: Universität Bremen 2012
Subjects:
570
Online Access:https://media.suub.uni-bremen.de/handle/elib/319
https://nbn-resolving.org/urn:nbn:de:gbv:46-00102628-18
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spelling ftsubbremen:oai:media.suub.uni-bremen.de:Publications/elib/319 2023-05-15T17:52:04+02:00 Combined CO2 and temperature effects on Emiliania huxleyi under severe nutrient stress Kombinierter Effekt von CO2 und Temperatur auf Emiliania huxleyi bei starker Nährstofflimitierung Borchard, Corinna Engel, Anja Pörtner, Hans-Otto 2012-03-09 application/pdf https://media.suub.uni-bremen.de/handle/elib/319 https://nbn-resolving.org/urn:nbn:de:gbv:46-00102628-18 eng eng Universität Bremen FB2 Biologie/Chemie https://media.suub.uni-bremen.de/handle/elib/319 urn:nbn:de:gbv:46-00102628-18 info:eu-repo/semantics/openAccess Bitte wählen Sie eine Lizenz aus: (Unsere Empfehlung: CC-BY) CC-BY Emiliania huxleyi Ocean Acidification Organic carbon Chemostat 570 570 Life sciences biology ddc:570 Dissertation doctoralThesis 2012 ftsubbremen 2022-11-09T07:09:21Z Primary production in the sunlit surface ocean is the driving force for the uptake of atmospheric CO2 and basis for its potential sequestration into the ocean s interior. As a consequence of the ongoing anthropogenic emissions of the greenhouse gas CO2, future climate will cause multiple environmental changes in the global ocean, including acidification, warming and nutrient availability. This thesis deals with the synergistic effect of elevated CO2 and temperature at phosphorus limitation on organic matter production by Emiliania huxleyi. Experiments were accomplished by means of a fully controlled continuous culture facility, concerning the combined manipulation of nutrient supply, growth rates, CO2 and temperature. Cell density, particulate organic carbon (POC) concentration and cell size of E. huxleyi were affected to varying degrees by applied growth, CO2 and temperature conditions. Elevated CO2 and temperature (greenhouse scenario) clearly led to an extended plasticity of E. huxleyi concerning a minimum phosphorus cell quota. The ability to produce more organic matter on low nutrient supply most likely gives rise to the production of high amounts of carbon rich biomass characterised by high elemental C:N:P ratios. Emphasis was put on the impact of global change on the production of dissolved and particulate organic carbon, in order to gain a comprehensive understanding of the general partitioning between dissolved organic carbon (DOC) and POC. 14C incubations revealed that the partitioning between photosynthetically derived DOC and POC is highly dependent, not only on nutrient status and growth rate, but additionally affected by the combined rise of CO2 and temperature. Higher percentages of extracellular release (PER) were determined at lower growth rates and greenhouse conditions induced highest PER, thus the strongest partitioning to the dissolved pool. A major fraction of DOC is comprised by combined carbohydrates (CCHO) which are suggested to contain the pre-cursor molecules for aggregation and ... Doctoral or Postdoctoral Thesis Ocean acidification Media SuUB Bremen (Staats- und Universitätsbibliothek Bremen)
institution Open Polar
collection Media SuUB Bremen (Staats- und Universitätsbibliothek Bremen)
op_collection_id ftsubbremen
language English
topic Emiliania huxleyi
Ocean Acidification
Organic carbon
Chemostat
570
570 Life sciences
biology
ddc:570
spellingShingle Emiliania huxleyi
Ocean Acidification
Organic carbon
Chemostat
570
570 Life sciences
biology
ddc:570
Borchard, Corinna
Combined CO2 and temperature effects on Emiliania huxleyi under severe nutrient stress
topic_facet Emiliania huxleyi
Ocean Acidification
Organic carbon
Chemostat
570
570 Life sciences
biology
ddc:570
description Primary production in the sunlit surface ocean is the driving force for the uptake of atmospheric CO2 and basis for its potential sequestration into the ocean s interior. As a consequence of the ongoing anthropogenic emissions of the greenhouse gas CO2, future climate will cause multiple environmental changes in the global ocean, including acidification, warming and nutrient availability. This thesis deals with the synergistic effect of elevated CO2 and temperature at phosphorus limitation on organic matter production by Emiliania huxleyi. Experiments were accomplished by means of a fully controlled continuous culture facility, concerning the combined manipulation of nutrient supply, growth rates, CO2 and temperature. Cell density, particulate organic carbon (POC) concentration and cell size of E. huxleyi were affected to varying degrees by applied growth, CO2 and temperature conditions. Elevated CO2 and temperature (greenhouse scenario) clearly led to an extended plasticity of E. huxleyi concerning a minimum phosphorus cell quota. The ability to produce more organic matter on low nutrient supply most likely gives rise to the production of high amounts of carbon rich biomass characterised by high elemental C:N:P ratios. Emphasis was put on the impact of global change on the production of dissolved and particulate organic carbon, in order to gain a comprehensive understanding of the general partitioning between dissolved organic carbon (DOC) and POC. 14C incubations revealed that the partitioning between photosynthetically derived DOC and POC is highly dependent, not only on nutrient status and growth rate, but additionally affected by the combined rise of CO2 and temperature. Higher percentages of extracellular release (PER) were determined at lower growth rates and greenhouse conditions induced highest PER, thus the strongest partitioning to the dissolved pool. A major fraction of DOC is comprised by combined carbohydrates (CCHO) which are suggested to contain the pre-cursor molecules for aggregation and ...
author2 Engel, Anja
Pörtner, Hans-Otto
format Doctoral or Postdoctoral Thesis
author Borchard, Corinna
author_facet Borchard, Corinna
author_sort Borchard, Corinna
title Combined CO2 and temperature effects on Emiliania huxleyi under severe nutrient stress
title_short Combined CO2 and temperature effects on Emiliania huxleyi under severe nutrient stress
title_full Combined CO2 and temperature effects on Emiliania huxleyi under severe nutrient stress
title_fullStr Combined CO2 and temperature effects on Emiliania huxleyi under severe nutrient stress
title_full_unstemmed Combined CO2 and temperature effects on Emiliania huxleyi under severe nutrient stress
title_sort combined co2 and temperature effects on emiliania huxleyi under severe nutrient stress
publisher Universität Bremen
publishDate 2012
url https://media.suub.uni-bremen.de/handle/elib/319
https://nbn-resolving.org/urn:nbn:de:gbv:46-00102628-18
genre Ocean acidification
genre_facet Ocean acidification
op_relation https://media.suub.uni-bremen.de/handle/elib/319
urn:nbn:de:gbv:46-00102628-18
op_rights info:eu-repo/semantics/openAccess
Bitte wählen Sie eine Lizenz aus: (Unsere Empfehlung: CC-BY)
op_rightsnorm CC-BY
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