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(Table 4) Cation concentrations in the hemolymph of Calanus glacialis females...
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(Table 3) Cation concentrations in the hemolymph of Calanus glacialis copepod...
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(Table 1) Cation concentrations in the hemolymph of Calanus glacialis copepod...
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(Fig. 2) Ammonium and Lithium concentration in the hemolymph of Calanus glaci...
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(Table 3) Mean respiration rate of the euphausiid species associated with lac...
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(Figure 1) Lactate concentration in in situ organisms
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(Fig. 2, 3, 5) Arterial and venous hemolymph oxygen partial pressures, heart ...
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(Table 1) Ion concentrations in the haemolymph of Apherusa glacialis after in...
Amphipods living at the underside of Arctic sea ice are exposed to varying salinities due to freezing and melting, and have to cope with the resulting osmotic stress.... -
Haemolymph inorganic ion composition of crustaceans from the Southern Ocean
Brachyuran and anomuran decapod crabs do not occur in the extremely cold waters of the Antarctic continental shelf whereas caridean and other shrimp-like decapods, amphipods and... -
Seawater carbonate chemistry and physiological performance parameters of Carc...
Ocean acidification causes an accumulation of CO2 in marine organisms and leads to shifts in acid-base parameters. Acid-base regulation in gill breathers involves a net increase... -
Seawater carbonate chemistry and acid–base parameters, metabolic rate and hea...
Ocean acidification (OA) studies typically use stable open-ocean pH or CO2 values. However, species living within dynamic coastal environments can naturally experience wide... -
Extracellular acid-base parameters of wild and selected Saccostrea glomerata
In order to allow full comparability with other ocean acidification data sets, the R package seacarb (Gattuso et al, 2016) was used to compute a complete and consistent set of... -
Seawater carbonate chemistry and cellular and molecular changes in hemolymph ...
Seawater pH and carbonate saturation are predicted to decrease dramatically by the end of the century. This process, designated ocean acidification (OA), threatens economically... -
Seawater carbonate chemistry and hemocyte physiology in the tanner crab (Chio...
We used flow cytometry to determine if there would be a difference in hematology, selected immune functions, and hemocyte pH (pHi), under two different, future ocean... -
Seawater carbonate chemistry and host–pathogen interactions: blue mussels, My...
Ocean acidification (OA) can shift the ecological balance between interacting organisms. In this study, we have used a model-system to illustrate the interaction between a... -
Seawater carbonate chemistry and acid–base balance in the hæmolymph of Europe...
Ocean acidification (OA) and the associated changes in seawater carbonate chemistry pose a threat to calcifying organisms. This is particularly serious for shelled molluscs, in... -
Seawater carbonate chemistry and acid-base physiology over tidal periods in t...
Ocean acidification (OA) studies to date have typically used stable open-ocean pH and CO2 values to predict the physiological responses of intertidal species to future climate... -
Seawater carbonate chemistry and acid–base physiology and behaviour of the Ca...
Behavioural impairment following exposure to ocean acidification-relevant CO2 levels has been noted in a broad array of taxa. The underlying cause of these disruptions is... -
Seawater carbonate chemistry and mussel shell defense capacity of Mytilus cor...
Oceanic uptake of atmospheric CO2 is reducing seawater pH and shifting carbonate chemistry within, a process termed as ocean acidification (OA). Marine mussels are a family of... -
Seawater carbonate chemistry and blood acid-base balance and other blood para...
Global ocean acidification is expected to chronically lower the pH to 7.3 (>2200 µatm seawater pCO2) by the year 2300. Acute hypercapnia already occurs along the South...