Electron acceptors in the Arctic: The roles of iron, humic acids, and organic chlorine in anaerobic respiration

Bacteria and archaea have evolved the ability to respire using diverse compounds to produce energy. The use of alternative electron acceptors for anaerobic respiration is critical in environments where oxygen is limited or absent – such as soils of the Arctic Coastal Plain. Continuous permafrost bel...

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Other Authors: Zlamal, Jaime Enid (author), Bartlett, Doug (Committee Member), Pogliano, Joe (Committee Member), Lipson, David (Advisor), Bizzoco, Richard (Committee Member), Dinsdale, Elizabeth (Committee Member), Biology (Department)
Format: Doctoral or Postdoctoral Thesis
Language:English
Published: 2016
Subjects:
Online Access:https://hdl.handle.net/20.500.11929/sdsu:22930
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spelling ftsandiegostateu:oai:drupal-site.org:sdsu_22930 2023-05-15T14:48:20+02:00 Electron acceptors in the Arctic: The roles of iron, humic acids, and organic chlorine in anaerobic respiration Zlamal, Jaime Enid (author) Bartlett, Doug (Committee Member) Pogliano, Joe (Committee Member) Lipson, David (Advisor) Bizzoco, Richard (Committee Member) Dinsdale, Elizabeth (Committee Member) Biology (Department) 2016 134 pages text https://hdl.handle.net/20.500.11929/sdsu:22930 en_US eng sdsu:22930 http://hdl.handle.net/20.500.11929/sdsu:22930 Dissertation 2016 ftsandiegostateu https://doi.org/20.500.11929/sdsu:22930 2022-03-24T18:47:49Z Bacteria and archaea have evolved the ability to respire using diverse compounds to produce energy. The use of alternative electron acceptors for anaerobic respiration is critical in environments where oxygen is limited or absent – such as soils of the Arctic Coastal Plain. Continuous permafrost below the active layer of soil restricts drainage, creating anoxic conditions. Thus, anaerobic respiration dominates all but the top few centimeters of soil. Climate change effects acutely impact the Arctic, and the potential for positive feedback from soil respiration is substantial. Biogeochemical cycling in this environment warrants further study, particularly concerning anaerobic electron acceptors which contribute to CO2 fluxes and can compete with methanogenesis, further impacting greenhouse gas emissions. The objective of this dissertation is to explore metabolism of unusual electron acceptors in Arctic tundra soils, focusing on the importance of humic substances, their interactions with iron, and the role of organohalide respiration in the Arctic carbon cycle. The research contained within unites microbiological techniques, soil chemistry methods, and innovative interdisciplinary tools to study these compounds from a variety of vantage points. Soil extract measurements, potentiometric redox titrations, and cyclic voltammetry revealed that metabolism involving humic acids in this environment may contribute nearly 400 moles of electrons per square meter of soil (e- /m2), accounting for over 10% of ecosystem respiration. Performing a field-based soil amendment experiment and laboratory incubations validated that reduction of large, insoluble humic acids can be facilitated by way of soluble iron intermediates, iron is an electronaccepting moiety in humic acids, and iron-reducing bacteria liberate complexed iron from the structure of humic acids. Chlorinated organic compound cycling in tundra soils was studied with field measurements, biological exploration using laboratory incubations and metagenomics, and chemical ... Doctoral or Postdoctoral Thesis Arctic Climate change permafrost Tundra SDSUnbound (San Diego State University) Arctic
institution Open Polar
collection SDSUnbound (San Diego State University)
op_collection_id ftsandiegostateu
language English
description Bacteria and archaea have evolved the ability to respire using diverse compounds to produce energy. The use of alternative electron acceptors for anaerobic respiration is critical in environments where oxygen is limited or absent – such as soils of the Arctic Coastal Plain. Continuous permafrost below the active layer of soil restricts drainage, creating anoxic conditions. Thus, anaerobic respiration dominates all but the top few centimeters of soil. Climate change effects acutely impact the Arctic, and the potential for positive feedback from soil respiration is substantial. Biogeochemical cycling in this environment warrants further study, particularly concerning anaerobic electron acceptors which contribute to CO2 fluxes and can compete with methanogenesis, further impacting greenhouse gas emissions. The objective of this dissertation is to explore metabolism of unusual electron acceptors in Arctic tundra soils, focusing on the importance of humic substances, their interactions with iron, and the role of organohalide respiration in the Arctic carbon cycle. The research contained within unites microbiological techniques, soil chemistry methods, and innovative interdisciplinary tools to study these compounds from a variety of vantage points. Soil extract measurements, potentiometric redox titrations, and cyclic voltammetry revealed that metabolism involving humic acids in this environment may contribute nearly 400 moles of electrons per square meter of soil (e- /m2), accounting for over 10% of ecosystem respiration. Performing a field-based soil amendment experiment and laboratory incubations validated that reduction of large, insoluble humic acids can be facilitated by way of soluble iron intermediates, iron is an electronaccepting moiety in humic acids, and iron-reducing bacteria liberate complexed iron from the structure of humic acids. Chlorinated organic compound cycling in tundra soils was studied with field measurements, biological exploration using laboratory incubations and metagenomics, and chemical ...
author2 Zlamal, Jaime Enid (author)
Bartlett, Doug (Committee Member)
Pogliano, Joe (Committee Member)
Lipson, David (Advisor)
Bizzoco, Richard (Committee Member)
Dinsdale, Elizabeth (Committee Member)
Biology (Department)
format Doctoral or Postdoctoral Thesis
title Electron acceptors in the Arctic: The roles of iron, humic acids, and organic chlorine in anaerobic respiration
spellingShingle Electron acceptors in the Arctic: The roles of iron, humic acids, and organic chlorine in anaerobic respiration
title_short Electron acceptors in the Arctic: The roles of iron, humic acids, and organic chlorine in anaerobic respiration
title_full Electron acceptors in the Arctic: The roles of iron, humic acids, and organic chlorine in anaerobic respiration
title_fullStr Electron acceptors in the Arctic: The roles of iron, humic acids, and organic chlorine in anaerobic respiration
title_full_unstemmed Electron acceptors in the Arctic: The roles of iron, humic acids, and organic chlorine in anaerobic respiration
title_sort electron acceptors in the arctic: the roles of iron, humic acids, and organic chlorine in anaerobic respiration
publishDate 2016
url https://hdl.handle.net/20.500.11929/sdsu:22930
geographic Arctic
geographic_facet Arctic
genre Arctic
Climate change
permafrost
Tundra
genre_facet Arctic
Climate change
permafrost
Tundra
op_relation sdsu:22930
http://hdl.handle.net/20.500.11929/sdsu:22930
op_doi https://doi.org/20.500.11929/sdsu:22930
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