Using pH to understand species-specific coccolithophore dynamics: a multi-disciplinary approach

Coccolithophores are fascinating organisms that play crucial roles in marine ecosystems. Their interaction with carbonate chemistry has garnered considerable attention because they act as marine calcifiers and have an impact on primary production. Changes in carbonate chemistry affect CO<sub>2...

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Detalles Bibliográficos
Autor Principal: Chauhan, N
Outros autores: Lee, RBY
Formato: Thesis
Idioma:English
Publicado: 2024
Subjects:
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author Chauhan, N
author2 Lee, RBY
author_facet Lee, RBY
Chauhan, N
author_sort Chauhan, N
collection OXFORD
description Coccolithophores are fascinating organisms that play crucial roles in marine ecosystems. Their interaction with carbonate chemistry has garnered considerable attention because they act as marine calcifiers and have an impact on primary production. Changes in carbonate chemistry affect CO<sub>2</sub> availability for photosynthesis and influence coccolithophore physiology and biochemistry through pH. Moreover, alterations in carbonate chemistry impact calcium carbonate saturation states, thus affecting calcification. This thesis aims to understand species-specific responses through the multifaceted effects of carbonate chemistry. It explores how pH influences molecular processes and how these translate into global impacts through biogeochemical changes. Dilute batch cultures are used to demonstrate how shifts in carbonate chemistry affect the carbon and oxygen isotopic composition of coccolith calcite and organic matter. Additionally, isotopic fractionation is used to understand carbon residence times in the internal carbon pools of coccolithophore species. Proteomic analyses shed light on the cellular mechanisms driving physiological changes in coccolithophores, revealing variations among species from different ecological and geological backgrounds. Moreover, coccolithophore physiology under changing carbonate chemistry is compared to investigate potential impacts on major nutrient cycles. Among all scenarios, <em>Chrysotila carterae</em> shows the more unique responses, perhaps due to its characteristic cell biology and habitat. <em>Coccolithus braarudii</em> emerges as the most sensitive species among those studied, with pH changes drastically affecting cellular processes and inducing carbon limitation under low CO<sub>2</sub> conditions. Stable isotopes of <em>Gephyrocapsa huxleyi</em> indicate significant isotopic disequilibrium due to large carbon fluxes in and out of the cell, driven by its high surface area to volume ratio. However, the high adaptability of cellular processes in <em>G. huxleyi</em> enables it to acclimate to pH changes, reflected in minor variations in its elemental stoichiometry. This research highlights species-specific responses to changing seawater pH and sets an example for increasing diversity in future coccolithophore research.
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spelling oxford-uuid:9abaa4f4-8e7c-42c9-be14-26217e95947c2025-02-20T08:59:38ZUsing pH to understand species-specific coccolithophore dynamics: a multi-disciplinary approachThesishttp://purl.org/coar/resource_type/c_db06uuid:9abaa4f4-8e7c-42c9-be14-26217e95947cBiogeochemistryEnglishHyrax Deposit2024Chauhan, NLee, RBYRickaby, REMCoccolithophores are fascinating organisms that play crucial roles in marine ecosystems. Their interaction with carbonate chemistry has garnered considerable attention because they act as marine calcifiers and have an impact on primary production. Changes in carbonate chemistry affect CO<sub>2</sub> availability for photosynthesis and influence coccolithophore physiology and biochemistry through pH. Moreover, alterations in carbonate chemistry impact calcium carbonate saturation states, thus affecting calcification. This thesis aims to understand species-specific responses through the multifaceted effects of carbonate chemistry. It explores how pH influences molecular processes and how these translate into global impacts through biogeochemical changes. Dilute batch cultures are used to demonstrate how shifts in carbonate chemistry affect the carbon and oxygen isotopic composition of coccolith calcite and organic matter. Additionally, isotopic fractionation is used to understand carbon residence times in the internal carbon pools of coccolithophore species. Proteomic analyses shed light on the cellular mechanisms driving physiological changes in coccolithophores, revealing variations among species from different ecological and geological backgrounds. Moreover, coccolithophore physiology under changing carbonate chemistry is compared to investigate potential impacts on major nutrient cycles. Among all scenarios, <em>Chrysotila carterae</em> shows the more unique responses, perhaps due to its characteristic cell biology and habitat. <em>Coccolithus braarudii</em> emerges as the most sensitive species among those studied, with pH changes drastically affecting cellular processes and inducing carbon limitation under low CO<sub>2</sub> conditions. Stable isotopes of <em>Gephyrocapsa huxleyi</em> indicate significant isotopic disequilibrium due to large carbon fluxes in and out of the cell, driven by its high surface area to volume ratio. However, the high adaptability of cellular processes in <em>G. huxleyi</em> enables it to acclimate to pH changes, reflected in minor variations in its elemental stoichiometry. This research highlights species-specific responses to changing seawater pH and sets an example for increasing diversity in future coccolithophore research.
spellingShingle Biogeochemistry
Chauhan, N
Using pH to understand species-specific coccolithophore dynamics: a multi-disciplinary approach
title Using pH to understand species-specific coccolithophore dynamics: a multi-disciplinary approach
title_full Using pH to understand species-specific coccolithophore dynamics: a multi-disciplinary approach
title_fullStr Using pH to understand species-specific coccolithophore dynamics: a multi-disciplinary approach
title_full_unstemmed Using pH to understand species-specific coccolithophore dynamics: a multi-disciplinary approach
title_short Using pH to understand species-specific coccolithophore dynamics: a multi-disciplinary approach
title_sort using ph to understand species specific coccolithophore dynamics a multi disciplinary approach
topic Biogeochemistry
work_keys_str_mv AT chauhann usingphtounderstandspeciesspecificcoccolithophoredynamicsamultidisciplinaryapproach