Saved in:
Bibliographic Details
Main Authors: Pettit, Laura Rachel, Smart, Christopher W, Hart, Malcom B, Milazzo, Marco, Hall-Spencer, Jason M
Format: Dataset Open Access
Language:en
Published: PANGAEA 2015
Subjects:
Adelosina longirostra; Affinetrina gualtieriana; Alkalinity, total; Aragonite saturation state; Benthos; Bicarbonate ion; Biomass/Abundance/Elemental composition; Bolivina pseudoplicata; Calcite saturation state; Calculated using CO2SYS; Calculated using seacarb after Nisumaa et al. (2010); Carbon, inorganic, dissolved; Carbonate ion; Carbonate system computation flag; Carbon dioxide; CO2 vent; Coast and continental shelf; Community composition and diversity; Cornuspira involvens; Daitrona sp.; Elphidium advenum; Elphidium crispum; Elphidium macellum; Elphidium margaritaceum; Elphidium sp.; Entire community; Field observation; Fugacity of carbon dioxide (water) at sea surface temperature (wet air); Haynesina depressula; Identification; Individuals; Lobatula lobatula; Massilina gualtieriana; Mediterranean Sea; Miliolinella sp.; Miliolinella subrotunda; OA-ICC; Ocean acidification; Ocean Acidification International Coordination Centre; Partial pressure of carbon dioxide (water) at sea surface temperature (wet air); Peneroplis pertusus; Peneroplis planatus; Percentage; pH, NBS scale; pH, total scale; Pileolina patelliformis; Potentiometric; Potentiometric titration; Pseudotriloculina sp.; Quinqueloculina annectens; Quinqueloculina auberiana; Quinqueloculina bosciana; Quinqueloculina sp.; Quinqueloculina stelligera; Rocky-shore community; Rosalina globularis; Rosalina sp.; Salinity; Species; Spiroloculina ornata; Temperate; Temperature, water; Triloculinella dilatata; Vertebralina striata
Online Access:https://doi.org/10.1594/PANGAEA.846530
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1867171835695595520
author Pettit, Laura Rachel
Smart, Christopher W
Hart, Malcom B
Milazzo, Marco
Hall-Spencer, Jason M
author_facet Pettit, Laura Rachel
Smart, Christopher W
Hart, Malcom B
Milazzo, Marco
Hall-Spencer, Jason M
collection Datos científicos de ciencias marinas y ambientales
contents Ocean acidification causes biodiversity loss, alters ecosystems, and may impact food security, as shells of small organisms dissolve easily in corrosive waters. There is a suggestion that photosynthetic organisms could mitigate ocean acidification on a local scale, through seagrass protection or seaweed cultivation, as net ecosystem organic production raises the saturation state of calcium carbonate making seawater less corrosive. Here, we used a natural gradient in calcium carbonate saturation, caused by shallow-water CO2 seeps in the Mediterranean Sea, to assess whether seaweed that is resistant to acidification (Padina pavonica) could prevent adverse effects of acidification on epiphytic foraminifera. We found a reduction in the number of species of foraminifera as calcium carbonate saturation state fell and that the assemblage shifted from one dominated by calcareous species at reference sites (pH 8.19) to one dominated by agglutinated foraminifera at elevated levels of CO2 (pH 7.71). It is expected that ocean acidification will result in changes in foraminiferal assemblage composition and agglutinated forms may become more prevalent. Although Padina did not prevent adverse effects of ocean acidification, high biomass stands of seagrass or seaweed farms might be more successful in protecting epiphytic foraminifera.
format Dataset Open Access
id pangaea_https___doi_org_10_1594_PANGAEA_846530
institution PANGAEA
language en
publishDate 2015
publisher PANGAEA
record_format pangaea
spellingShingle Seaweed fails to prevent ocean acidification impact on foraminifera along a shallow-water CO2 gradient
Pettit, Laura Rachel
Smart, Christopher W
Hart, Malcom B
Milazzo, Marco
Hall-Spencer, Jason M
Adelosina longirostra; Affinetrina gualtieriana; Alkalinity, total; Aragonite saturation state; Benthos; Bicarbonate ion; Biomass/Abundance/Elemental composition; Bolivina pseudoplicata; Calcite saturation state; Calculated using CO2SYS; Calculated using seacarb after Nisumaa et al. (2010); Carbon, inorganic, dissolved; Carbonate ion; Carbonate system computation flag; Carbon dioxide; CO2 vent; Coast and continental shelf; Community composition and diversity; Cornuspira involvens; Daitrona sp.; Elphidium advenum; Elphidium crispum; Elphidium macellum; Elphidium margaritaceum; Elphidium sp.; Entire community; Field observation; Fugacity of carbon dioxide (water) at sea surface temperature (wet air); Haynesina depressula; Identification; Individuals; Lobatula lobatula; Massilina gualtieriana; Mediterranean Sea; Miliolinella sp.; Miliolinella subrotunda; OA-ICC; Ocean acidification; Ocean Acidification International Coordination Centre; Partial pressure of carbon dioxide (water) at sea surface temperature (wet air); Peneroplis pertusus; Peneroplis planatus; Percentage; pH, NBS scale; pH, total scale; Pileolina patelliformis; Potentiometric; Potentiometric titration; Pseudotriloculina sp.; Quinqueloculina annectens; Quinqueloculina auberiana; Quinqueloculina bosciana; Quinqueloculina sp.; Quinqueloculina stelligera; Rocky-shore community; Rosalina globularis; Rosalina sp.; Salinity; Species; Spiroloculina ornata; Temperate; Temperature, water; Triloculinella dilatata; Vertebralina striata
Ocean acidification causes biodiversity loss, alters ecosystems, and may impact food security, as shells of small organisms dissolve easily in corrosive waters. There is a suggestion that photosynthetic organisms could mitigate ocean acidification on a local scale, through seagrass protection or seaweed cultivation, as net ecosystem organic production raises the saturation state of calcium carbonate making seawater less corrosive. Here, we used a natural gradient in calcium carbonate saturation, caused by shallow-water CO2 seeps in the Mediterranean Sea, to assess whether seaweed that is resistant to acidification (Padina pavonica) could prevent adverse effects of acidification on epiphytic foraminifera. We found a reduction in the number of species of foraminifera as calcium carbonate saturation state fell and that the assemblage shifted from one dominated by calcareous species at reference sites (pH 8.19) to one dominated by agglutinated foraminifera at elevated levels of CO2 (pH 7.71). It is expected that ocean acidification will result in changes in foraminiferal assemblage composition and agglutinated forms may become more prevalent. Although Padina did not prevent adverse effects of ocean acidification, high biomass stands of seagrass or seaweed farms might be more successful in protecting epiphytic foraminifera.
title Seaweed fails to prevent ocean acidification impact on foraminifera along a shallow-water CO2 gradient
topic Adelosina longirostra; Affinetrina gualtieriana; Alkalinity, total; Aragonite saturation state; Benthos; Bicarbonate ion; Biomass/Abundance/Elemental composition; Bolivina pseudoplicata; Calcite saturation state; Calculated using CO2SYS; Calculated using seacarb after Nisumaa et al. (2010); Carbon, inorganic, dissolved; Carbonate ion; Carbonate system computation flag; Carbon dioxide; CO2 vent; Coast and continental shelf; Community composition and diversity; Cornuspira involvens; Daitrona sp.; Elphidium advenum; Elphidium crispum; Elphidium macellum; Elphidium margaritaceum; Elphidium sp.; Entire community; Field observation; Fugacity of carbon dioxide (water) at sea surface temperature (wet air); Haynesina depressula; Identification; Individuals; Lobatula lobatula; Massilina gualtieriana; Mediterranean Sea; Miliolinella sp.; Miliolinella subrotunda; OA-ICC; Ocean acidification; Ocean Acidification International Coordination Centre; Partial pressure of carbon dioxide (water) at sea surface temperature (wet air); Peneroplis pertusus; Peneroplis planatus; Percentage; pH, NBS scale; pH, total scale; Pileolina patelliformis; Potentiometric; Potentiometric titration; Pseudotriloculina sp.; Quinqueloculina annectens; Quinqueloculina auberiana; Quinqueloculina bosciana; Quinqueloculina sp.; Quinqueloculina stelligera; Rocky-shore community; Rosalina globularis; Rosalina sp.; Salinity; Species; Spiroloculina ornata; Temperate; Temperature, water; Triloculinella dilatata; Vertebralina striata
url https://doi.org/10.1594/PANGAEA.846530