Nonspecific uptake and homeostasis drive the oceanic cadmium cycle.

The global marine distributions of Cd and phosphate are closely correlated, which has led to Cd being considered as a marine micronutrient, despite its toxicity to life. The explanation for this nutrient-like behavior is unknown because there is only one identified biochemical function for Cd, an un...

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Main Authors: Horner, T, Lee, R, Henderson, G, Rickaby, R
Format: Journal article
Language:English
Published: 2013
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author Horner, T
Lee, R
Henderson, G
Rickaby, R
author_facet Horner, T
Lee, R
Henderson, G
Rickaby, R
author_sort Horner, T
collection OXFORD
description The global marine distributions of Cd and phosphate are closely correlated, which has led to Cd being considered as a marine micronutrient, despite its toxicity to life. The explanation for this nutrient-like behavior is unknown because there is only one identified biochemical function for Cd, an unusual Cd/Zn carbonic anhydrase. Recent developments in Cd isotope mass spectrometry have revealed that Cd uptake by phytoplankton causes isotopic fractionation in the open ocean and in culture. Here we investigate the physiochemical pathways that fractionate Cd isotopes by performing subcellular Cd isotope analysis on genetically modified microorganisms. We find that expression of the Cd/Zn carbonic anhydrase makes no difference to the Cd isotope composition of whole cells. Instead, a large proportion of the Cd is partitioned into cell membranes with a similar direction and magnitude of Cd isotopic fractionation to that seen in surface seawater. This observation is well explained if Cd is mistakenly imported with other divalent metals and subsequently managed by binding within the cell to avoid toxicity. This process may apply to other divalent metals, whereby nonspecific uptake and subsequent homeostasis may contribute to elemental and isotopic distributions in seawater, even for elements commonly considered as micronutrients.
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spelling oxford-uuid:44b856c0-fec8-434e-8afa-e29a06bbd40e2022-03-26T15:03:18ZNonspecific uptake and homeostasis drive the oceanic cadmium cycle.Journal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:44b856c0-fec8-434e-8afa-e29a06bbd40eEnglishSymplectic Elements at Oxford2013Horner, TLee, RHenderson, GRickaby, RThe global marine distributions of Cd and phosphate are closely correlated, which has led to Cd being considered as a marine micronutrient, despite its toxicity to life. The explanation for this nutrient-like behavior is unknown because there is only one identified biochemical function for Cd, an unusual Cd/Zn carbonic anhydrase. Recent developments in Cd isotope mass spectrometry have revealed that Cd uptake by phytoplankton causes isotopic fractionation in the open ocean and in culture. Here we investigate the physiochemical pathways that fractionate Cd isotopes by performing subcellular Cd isotope analysis on genetically modified microorganisms. We find that expression of the Cd/Zn carbonic anhydrase makes no difference to the Cd isotope composition of whole cells. Instead, a large proportion of the Cd is partitioned into cell membranes with a similar direction and magnitude of Cd isotopic fractionation to that seen in surface seawater. This observation is well explained if Cd is mistakenly imported with other divalent metals and subsequently managed by binding within the cell to avoid toxicity. This process may apply to other divalent metals, whereby nonspecific uptake and subsequent homeostasis may contribute to elemental and isotopic distributions in seawater, even for elements commonly considered as micronutrients.
spellingShingle Horner, T
Lee, R
Henderson, G
Rickaby, R
Nonspecific uptake and homeostasis drive the oceanic cadmium cycle.
title Nonspecific uptake and homeostasis drive the oceanic cadmium cycle.
title_full Nonspecific uptake and homeostasis drive the oceanic cadmium cycle.
title_fullStr Nonspecific uptake and homeostasis drive the oceanic cadmium cycle.
title_full_unstemmed Nonspecific uptake and homeostasis drive the oceanic cadmium cycle.
title_short Nonspecific uptake and homeostasis drive the oceanic cadmium cycle.
title_sort nonspecific uptake and homeostasis drive the oceanic cadmium cycle
work_keys_str_mv AT hornert nonspecificuptakeandhomeostasisdrivetheoceaniccadmiumcycle
AT leer nonspecificuptakeandhomeostasisdrivetheoceaniccadmiumcycle
AT hendersong nonspecificuptakeandhomeostasisdrivetheoceaniccadmiumcycle
AT rickabyr nonspecificuptakeandhomeostasisdrivetheoceaniccadmiumcycle