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Factors Controlling the Stable Nitrogen Isotopic Composition (δ15N) of Lipids in Marine Animals
by
Sinninghe Damsté, Jaap S.
, Schouten, Stefan
, Svensson, Elisabeth
, Hopmans, Ellen C.
, Middelburg, Jack J.
in
Amino acids
/ Analysis
/ Animal tissues
/ Animals
/ Biogeochemistry
/ Biomass
/ Biosynthesis
/ Brachyura - metabolism
/ Carbon
/ Carbon Isotopes - analysis
/ Cardiidae - metabolism
/ Choline
/ Chromatography
/ Clupea harengus
/ Crabs
/ Crassostrea gigas
/ Depletion
/ Earth science
/ Ecology
/ Fish
/ Fishes - metabolism
/ Fractionation
/ Isotope composition
/ Isotopes
/ Isotopic composition
/ Lipids
/ Lipids - chemistry
/ Marine animals
/ Marine fish
/ Marine organisms
/ Mass spectrometry
/ Nitrogen
/ Nitrogen isotopes
/ Nitrogen Isotopes - analysis
/ Physiological aspects
/ Polychaeta - metabolism
/ Scientific imaging
/ Serine
/ Shellfish
/ Stable isotopes
/ Trophic levels
/ Urea
2016
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Factors Controlling the Stable Nitrogen Isotopic Composition (δ15N) of Lipids in Marine Animals
by
Sinninghe Damsté, Jaap S.
, Schouten, Stefan
, Svensson, Elisabeth
, Hopmans, Ellen C.
, Middelburg, Jack J.
in
Amino acids
/ Analysis
/ Animal tissues
/ Animals
/ Biogeochemistry
/ Biomass
/ Biosynthesis
/ Brachyura - metabolism
/ Carbon
/ Carbon Isotopes - analysis
/ Cardiidae - metabolism
/ Choline
/ Chromatography
/ Clupea harengus
/ Crabs
/ Crassostrea gigas
/ Depletion
/ Earth science
/ Ecology
/ Fish
/ Fishes - metabolism
/ Fractionation
/ Isotope composition
/ Isotopes
/ Isotopic composition
/ Lipids
/ Lipids - chemistry
/ Marine animals
/ Marine fish
/ Marine organisms
/ Mass spectrometry
/ Nitrogen
/ Nitrogen isotopes
/ Nitrogen Isotopes - analysis
/ Physiological aspects
/ Polychaeta - metabolism
/ Scientific imaging
/ Serine
/ Shellfish
/ Stable isotopes
/ Trophic levels
/ Urea
2016
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Factors Controlling the Stable Nitrogen Isotopic Composition (δ15N) of Lipids in Marine Animals
by
Sinninghe Damsté, Jaap S.
, Schouten, Stefan
, Svensson, Elisabeth
, Hopmans, Ellen C.
, Middelburg, Jack J.
in
Amino acids
/ Analysis
/ Animal tissues
/ Animals
/ Biogeochemistry
/ Biomass
/ Biosynthesis
/ Brachyura - metabolism
/ Carbon
/ Carbon Isotopes - analysis
/ Cardiidae - metabolism
/ Choline
/ Chromatography
/ Clupea harengus
/ Crabs
/ Crassostrea gigas
/ Depletion
/ Earth science
/ Ecology
/ Fish
/ Fishes - metabolism
/ Fractionation
/ Isotope composition
/ Isotopes
/ Isotopic composition
/ Lipids
/ Lipids - chemistry
/ Marine animals
/ Marine fish
/ Marine organisms
/ Mass spectrometry
/ Nitrogen
/ Nitrogen isotopes
/ Nitrogen Isotopes - analysis
/ Physiological aspects
/ Polychaeta - metabolism
/ Scientific imaging
/ Serine
/ Shellfish
/ Stable isotopes
/ Trophic levels
/ Urea
2016
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Factors Controlling the Stable Nitrogen Isotopic Composition (δ15N) of Lipids in Marine Animals
Journal Article
Factors Controlling the Stable Nitrogen Isotopic Composition (δ15N) of Lipids in Marine Animals
2016
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Overview
Lipid extraction of biomass prior to stable isotope analysis is known to cause variable changes in the stable nitrogen isotopic composition (δ15N) of residual biomass. However, the underlying factors causing these changes are not yet clear. Here we address this issue by comparing the δ15N of bulk and residual biomass of several marine animal tissues (fish, crab, cockle, oyster, and polychaete), as well as the δ15N of the extracted lipids. As observed previously, lipid extraction led to a variable offset in δ15N of biomass (differences ranging from -2.3 to +1.8 ‰). Importantly, the total lipid extract (TLE) was highly depleted in 15N compared to bulk biomass, and also highly variable (differences ranging from -14 to +0.7 ‰). The TLE consisted mainly of phosphatidylcholines, a group of lipids with one nitrogen atom in the headgroup. To elucidate the cause for the 15N-depletion in the TLE, the δ15N of amino acids was determined, including serine because it is one of the main sources of nitrogen to N-containing lipids. Serine δ15N values differed by -7 to +2 ‰ from bulk biomass δ15N, and correlated well with the 15N depletion in TLEs. On average, serine was less depleted (-3‰) than the TLE (-7 ‰), possibly due to fractionation during biosynthesis of N-containing headgroups, or that other nitrogen-containing compounds, such as urea and choline, or recycled nitrogen contribute to the nitrogen isotopic composition of the TLE. The depletion in 15N of the TLE relative to biomass increased with the trophic level of the organisms.
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