Size as a Trait for Understanding the Role of Zooplankton in the Biological Carbon Pump

Living organisms impact carbon transport between the atmosphere and the ocean through the biological carbon pump. Some plankton communities augment carbon export from the ocean’s surface, and are thought to have a major role in global climate. These export communities are often characterized by larg...

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Main Author: Stamieszkin, Karen
Format: Text
Language:unknown
Published: DigitalCommons@UMaine 2016
Subjects:
Online Access:https://digitalcommons.library.umaine.edu/etd/2508
https://digitalcommons.library.umaine.edu/cgi/viewcontent.cgi?article=3522&context=etd
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spelling ftmaineuniv:oai:digitalcommons.library.umaine.edu:etd-3522 2023-05-15T17:35:56+02:00 Size as a Trait for Understanding the Role of Zooplankton in the Biological Carbon Pump Stamieszkin, Karen 2016-08-19T07:00:00Z application/pdf https://digitalcommons.library.umaine.edu/etd/2508 https://digitalcommons.library.umaine.edu/cgi/viewcontent.cgi?article=3522&context=etd unknown DigitalCommons@UMaine https://digitalcommons.library.umaine.edu/etd/2508 https://digitalcommons.library.umaine.edu/cgi/viewcontent.cgi?article=3522&context=etd Electronic Theses and Dissertations biological carbon pump zooplankton fecal pellet allometry biogeochemistry grazing Marine Biology Oceanography text 2016 ftmaineuniv 2023-03-12T19:45:00Z Living organisms impact carbon transport between the atmosphere and the ocean through the biological carbon pump. Some plankton communities augment carbon export from the ocean’s surface, and are thought to have a major role in global climate. These export communities are often characterized by larger organisms that sink to depths where the carbon they contain is sequestered from the atmosphere. Zooplankton can enhance export by aggregating prey into larger sinking fecal pellets; however fecal pellet flux is a highly variable component of the biological carbon pump. Relating plankton trophic dynamics to changes in particulate carbon flux is an important step in understanding the ocean’s carbon cycle. This research aims to connect plankton ecology with variability in zooplankton fecal pellet carbon flux, using body size as an organizing trait. A copepod fecal pellet carbon flux model is presented and applied to 25 years of copepod data from the Gulf of Maine. This model uses size-based metabolic rates to estimate fecal pellet production, and sinking and decay functions to estimate flux. The results show that copepod community size structure determines fecal pellet carbon flux efficiency, but that flux itself is determined by copepod abundance and size. A second iteration of this model, which includes a temperature-dependent pellet decay function and diel vertical migration behavior, is applied to 55 years of copepod data from the North Atlantic Ocean. Analysis shows that fecal pellet carbon flux is decreasing as a result of declining copepod biomass, coincident with ocean warming. However, these changes vary from region to region, highlighting the importance of local dynamics. A study of local-scale trophic dynamics in the Gulf of Maine tests whether feeding and zooplankton fecal pellet production increases particle size, and therefore flux potential, in plankton communities. These experiments show tight coupling between microplankton and mesozooplankton, and demonstrate the importance of fecal pellet production ... Text North Atlantic The University of Maine: DigitalCommons@UMaine
institution Open Polar
collection The University of Maine: DigitalCommons@UMaine
op_collection_id ftmaineuniv
language unknown
topic biological carbon pump
zooplankton
fecal pellet
allometry
biogeochemistry
grazing
Marine Biology
Oceanography
spellingShingle biological carbon pump
zooplankton
fecal pellet
allometry
biogeochemistry
grazing
Marine Biology
Oceanography
Stamieszkin, Karen
Size as a Trait for Understanding the Role of Zooplankton in the Biological Carbon Pump
topic_facet biological carbon pump
zooplankton
fecal pellet
allometry
biogeochemistry
grazing
Marine Biology
Oceanography
description Living organisms impact carbon transport between the atmosphere and the ocean through the biological carbon pump. Some plankton communities augment carbon export from the ocean’s surface, and are thought to have a major role in global climate. These export communities are often characterized by larger organisms that sink to depths where the carbon they contain is sequestered from the atmosphere. Zooplankton can enhance export by aggregating prey into larger sinking fecal pellets; however fecal pellet flux is a highly variable component of the biological carbon pump. Relating plankton trophic dynamics to changes in particulate carbon flux is an important step in understanding the ocean’s carbon cycle. This research aims to connect plankton ecology with variability in zooplankton fecal pellet carbon flux, using body size as an organizing trait. A copepod fecal pellet carbon flux model is presented and applied to 25 years of copepod data from the Gulf of Maine. This model uses size-based metabolic rates to estimate fecal pellet production, and sinking and decay functions to estimate flux. The results show that copepod community size structure determines fecal pellet carbon flux efficiency, but that flux itself is determined by copepod abundance and size. A second iteration of this model, which includes a temperature-dependent pellet decay function and diel vertical migration behavior, is applied to 55 years of copepod data from the North Atlantic Ocean. Analysis shows that fecal pellet carbon flux is decreasing as a result of declining copepod biomass, coincident with ocean warming. However, these changes vary from region to region, highlighting the importance of local dynamics. A study of local-scale trophic dynamics in the Gulf of Maine tests whether feeding and zooplankton fecal pellet production increases particle size, and therefore flux potential, in plankton communities. These experiments show tight coupling between microplankton and mesozooplankton, and demonstrate the importance of fecal pellet production ...
format Text
author Stamieszkin, Karen
author_facet Stamieszkin, Karen
author_sort Stamieszkin, Karen
title Size as a Trait for Understanding the Role of Zooplankton in the Biological Carbon Pump
title_short Size as a Trait for Understanding the Role of Zooplankton in the Biological Carbon Pump
title_full Size as a Trait for Understanding the Role of Zooplankton in the Biological Carbon Pump
title_fullStr Size as a Trait for Understanding the Role of Zooplankton in the Biological Carbon Pump
title_full_unstemmed Size as a Trait for Understanding the Role of Zooplankton in the Biological Carbon Pump
title_sort size as a trait for understanding the role of zooplankton in the biological carbon pump
publisher DigitalCommons@UMaine
publishDate 2016
url https://digitalcommons.library.umaine.edu/etd/2508
https://digitalcommons.library.umaine.edu/cgi/viewcontent.cgi?article=3522&context=etd
genre North Atlantic
genre_facet North Atlantic
op_source Electronic Theses and Dissertations
op_relation https://digitalcommons.library.umaine.edu/etd/2508
https://digitalcommons.library.umaine.edu/cgi/viewcontent.cgi?article=3522&context=etd
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