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Blanchet, Cécile L; Tjallingii, Rik; Schleicher, Anja Maria; Schouten, Stefan; Frank, Martin; Brauer, Achim (2021): Biomarkers of sediment core POS362-2_99 [dataset]. PANGAEA, https://doi.org/10.1594/PANGAEA.930794, In: Blanchet, CL et al. (2021): XRF elemental contents, oxygen and carbon isotopes and biomarkers of sediment cores POS362-2_33, POS362-2_73 and POS362-2_99 [dataset publication series]. PANGAEA, https://doi.org/10.1594/PANGAEA.930796

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Abstract:
Ocean deoxygenation is a rising threat to marine ecosystems and food resources under present climate warming conditions. Organic-rich sapropel layers deposited in the Mediterranean Sea provide a natural laboratory to study the processes that have controlled the changes in seawater oxygen levels in the recent geological past. Our study is based on three sediment cores spanning the last 10 thousand years (10 kyr BP) and located on a bathymetric transect offshore the western distributaries of the Nile delta. These cores are partly to continuously laminated in the sections recording sapropel S1, which is indicative of bottom-water anoxia above the western Nile deep-sea fan. We used a combination of microfacies analyses and inorganic and organic geochemical measurements to reconstruct changes in oxygenation conditions at seasonal to millennial time-scales. The regular alternations of detrital, biogenic and chemogenic sublayers in the laminated sequences are interpreted in terms of seasonal changes. Our microfacies analyses reveal distinct summer floods and subsequent plankton blooms preceding the deposition of inorganic carbonates formed in the water-column during spring-early summer. The isotopic signature of these carbonates suggests year-round anoxic to euxinic bottom waters resulting in high levels of anaerobic remineralisation of organic matter and highlights their potential to reconstruct seawater chemistry at times when benthic fauna was absent. Synchronous changes in terrigenous input, primary productivity and past oxygenation dynamics on millennial time-scales obtained by our multi-proxy study show that runoff-driven eutrophication played a central role in driving rapid changes in oxygenation state of the entire Levantine Basin. Rapid fluctuations of oxygenation conditions in the upper 700 m water depth occurred above the Nile deep-sea fan between 10 and 6.5 ka BP while deeper cores recorded more stable anoxic conditions. These findings are further supported by other regional records and reveal time-transgressive changes in oxygenation state driven by rapid changes in primary productivity during a period of long-term deep-water stagnation.
Keyword(s):
deoxygenation; Geochemistry; Nile River; Sapropel S1
Supplement to:
Blanchet, Cécile L; Tjallingii, Rik; Schleicher, Anja Maria; Schouten, Stefan; Frank, Martin; Brauer, Achim (accepted): Deoxygenation dynamics above the western Nile deep-sea fan during sapropel S1 at seasonal to millenial time-scales. Climate of the Past, https://doi.org/10.5194/cp-2020-114
Coverage:
Latitude: 31.945320 * Longitude: 30.149180
Date/Time Start: 2008-02-22T06:26:00 * Date/Time End: 2008-02-22T06:26:00
Minimum DEPTH, sediment/rock: 0.000 m * Maximum DEPTH, sediment/rock: 5.285 m
Event(s):
POS362-2_99 * Latitude: 31.945320 * Longitude: 30.149180 * Date/Time: 2008-02-22T06:26:00 * Elevation: 396.0 m * Campaign: POS362/2 * Basis: Poseidon * Method/Device: Gravity corer (GC)
Parameter(s):
#NameShort NameUnitPrincipal InvestigatorMethod/DeviceComment
1DEPTH, sediment/rockDepth sedmBlanchet, Cécile LGeocode
2AGEAgeka BPBlanchet, Cécile LGeocode
3Age, errorAge e±Blanchet, Cécile L2s
4MassMassgBlanchet, Cécile Lweight sediment
5Density, wet bulkWBDg/cm3Blanchet, Cécile L
6Linear sedimentation rateLSRcm/kaBlanchet, Cécile L
7MassMassµgBlanchet, Cécile Lweigh of the C37 Alkenone
8C37:2-, C37:3-AlkenoneC37:2, C37:3µg/gBlanchet, Cécile L
9Accumulation rate, alkenonesAcc rate alkµg/cm2/kaBlanchet, Cécile Lmass accumulation rate of the C37 Alkenone
10MassMassµgBlanchet, Cécile Lweight odd n-alkanes (µg)
11MassMassµgBlanchet, Cécile Lweight lycopane (µg)
12MassMassµgBlanchet, Cécile Lweight triterpenoids (µg)
13ConcentrationConcµg/gBlanchet, Cécile Lconc odd n-alkanes (µg/g)
14ConcentrationConcµg/gBlanchet, Cécile Lconc lycopane (µg/g)
15ConcentrationConcµg/gBlanchet, Cécile Lconc triterpenoids (µg/g)
16Accumulation rate, massMARg/cm2/kaBlanchet, Cécile LMAR odd n-alkanes (µg/cm2.a)
17Accumulation rate, massMARg/cm2/kaBlanchet, Cécile LMAR lycopane (µg/cm2.a)
18Accumulation rate, massMARg/cm2/kaBlanchet, Cécile LMAR triterpenoids (µg/cm2.a)
19Carbon Preference IndexCPIBlanchet, Cécile L
20MassMassµgBlanchet, Cécile LWeight cren (µg)
21Standard deviationStd dev±Blanchet, Cécile Lweight cren
22MassMassµgBlanchet, Cécile LWeight brGDGTs (µg)
23Standard deviationStd dev±Blanchet, Cécile LWeight brGDGTs (µg)
24ConcentrationConcµg/gBlanchet, Cécile LConc cren (µg/g)
25Standard deviationStd dev±Blanchet, Cécile LConc cren (µg/g)
26ConcentrationConcµg/gBlanchet, Cécile LConc brGDGTs (µg/g)
27Standard deviationStd dev±Blanchet, Cécile LConc brGDGTs (µg/g)
28Accumulation rate, massMARg/cm2/kaBlanchet, Cécile LMAR Cren (µg/cm2.a)
29Standard deviationStd dev±Blanchet, Cécile LMAR Cren (µg/cm2.a)
30Accumulation rate, massMARg/cm2/kaBlanchet, Cécile LMAR brGDGTs (µg/cm2.a)
31Standard deviationStd dev±Blanchet, Cécile LMAR brGDGTs (µg/cm2.a)
Status:
Curation Level: Enhanced curation (CurationLevelC)
Size:
503 data points

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