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Schouten, Stefan; Pitcher, Angela; Hopmans, Ellen C; Villanueva, Laura; van Bleijswijk, Judith; Sinninghe Damsté, Jaap S (2012): Concentrations and TEX86 values of GDGTs present as core lipids and derived from intact polar lipids of station PASOM_10_WS water samples [dataset]. PANGAEA, https://doi.org/10.1594/PANGAEA.881386, Supplement to: Schouten, S et al. (2012): Intact polar and core glycerol dibiphytanyl glycerol tetraether lipids in the Arabian Sea oxygen minimum zone: I. Selective preservation and degradation in the water column and consequences for the TEX86. Geochimica et Cosmochimica Acta, 98, 228-243, https://doi.org/10.1016/j.gca.2012.05.002

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Abstract:
Glycerol dibiphytanyl glycerol tetraether lipids (GDGTs) have proven to be important biomarker lipids for specific archaeal lineages and their distribution is used as a paleotemperature proxy. In this study, we analyzed GDGTs in suspended particles in the water column of the Arabian Sea at different positions above, in and below the oxygen minimum zone (OMZ). GDGTs, both as intact polar lipid (IPL) and as core lipids, were detected throughout the water column but were most abundant at the upper part of the OMZ. Core lipid GDGTs, derived from non-living organic matter, were always much more abundant than GDGTs released by acid hydrolysis of an IPL fraction (IPL-derived GDGTs). Comparisons with 16S rRNA gene abundance showed that likely only 1-14% of total archaeal cells present were caught on the 0.7 lm filter used for lipid analysis. Despite this undersampling, the depth profiles of crenarchaeol core lipid with a phosphohexose or dihexose head group match previously reported profiles of (expressed) genes specific for ammonia-oxidizing Thaumarchaeota, such as 16S rDNA and amoA. In contrast, the crenarchaeol with a hexose head group as well as core lipid and IPL-derived crenarchaeol matched the genetic depth profiles much less, suggesting a contribution of GDGTs from non-living matter. TEX86 values of both core lipid and IPL-derived GDGTs increased from surface waters to the core of the OMZ, below which they decreased again, and did not correlate with in situ water temperature. In contrast, TEX86 values of IPL-derived GDGTs correlated well the relative amount of glycosidic GDGTs and were consistently higher than that those of CL GDGTs. This suggests that selective preservation of glycosidic GDGTs may mask TEX86 values of in situ produced GDGTs in deep marine waters.
Related to:
Pitcher, Angela; Villanueva, Laura; Hopmans, Ellen C; Schouten, Stefan; Reichart, Gert-Jan; Sinninghe Damsté, Jaap S (2011): Niche segregation of ammonia-oxidizing archaea and anammox bacteria in the Arabian Sea oxygen minimum zone. The ISME Journal, 5(12), 1896-1904, https://doi.org/10.1038/ismej.2011.60
Coverage:
Latitude: 21.926670 * Longitude: 63.176670
Minimum DEPTH, water: 20 m * Maximum DEPTH, water: 2000 m
Event(s):
PASOM_10_WS * Latitude: 21.926670 * Longitude: 63.176670 * Campaign: 64PE301 (PASOM) * Basis: Pelagia * Method/Device: Water sample (WS)
Parameter(s):
#NameShort NameUnitPrincipal InvestigatorMethod/DeviceComment
DEPTH, waterDepth watermSchouten, StefanGeocode
Acyclic glycerol dialkyl glycerol tetraetherGDGT-0ng/lSchouten, StefanCore lipids
Monocyclic glycerol dialkyl glycerol tetraetherGDGT-1ng/lSchouten, StefanCore lipids
Dicyclic glycerol dialkyl glycerol tetraetherGDGT-2ng/lSchouten, StefanCore lipids
Tricyclic glycerol dialkyl glycerol tetraetherGDGT-3ng/lSchouten, StefanCore lipids
CrenarchaeolCrenng/lSchouten, StefanCore lipids
Crenarchaeol isomerCren isong/lSchouten, StefanCore lipids
Glycerol dialkyl glycerol tetraetherGDGTng/lSchouten, StefanTotal, core lipids
Tetraether index of 86 carbon atomsTEX86Schouten, StefanIntact lipid derived
10 Acyclic glycerol dialkyl glycerol tetraetherGDGT-0ng/lSchouten, StefanIntact lipid derived
11 Monocyclic glycerol dialkyl glycerol tetraetherGDGT-1ng/lSchouten, StefanIntact lipid derived
12 Dicyclic glycerol dialkyl glycerol tetraetherGDGT-2ng/lSchouten, StefanIntact lipid derived
13 Tricyclic glycerol dialkyl glycerol tetraetherGDGT-3ng/lSchouten, StefanIntact lipid derived
14 CrenarchaeolCrenng/lSchouten, StefanIntact lipid derived
15 Crenarchaeol isomerCren isong/lSchouten, StefanIntact lipid derived
16 Glycerol dialkyl glycerol tetraetherGDGTng/lSchouten, StefanTotal, intact lipid derived
17 Tetraether index of 86 carbon atomsTEX86Schouten, Stefan
18 Thaumarchaeota 16S copy numberThaumarchaeota#/lSchouten, StefanPitcher et al. (2011)
19 Intact polar lipidsIPLsng/lSchouten, Stefan
Size:
216 data points

Data

Download dataset as tab-delimited text — use the following character encoding:


Depth water [m]

GDGT-0 [ng/l]
(Core lipids)

GDGT-1 [ng/l]
(Core lipids)

GDGT-2 [ng/l]
(Core lipids)

GDGT-3 [ng/l]
(Core lipids)

Cren [ng/l]
(Core lipids)

Cren iso [ng/l]
(Core lipids)

GDGT [ng/l]
(Total, core lipids)

TEX86
(Intact lipid derived)
10 
GDGT-0 [ng/l]
(Intact lipid derived)
11 
GDGT-1 [ng/l]
(Intact lipid derived)
12 
GDGT-2 [ng/l]
(Intact lipid derived)
13 
GDGT-3 [ng/l]
(Intact lipid derived)
14 
Cren [ng/l]
(Intact lipid derived)
15 
Cren iso [ng/l]
(Intact lipid derived)
16 
GDGT [ng/l]
(Total, intact lipid derived)
17 
TEX86
18 
Thaumarchaeota [#/l]
(Pitcher et al. (2011))
19 
IPLs [ng/l]
200.0490.0230.0170.0090.170.0080.310.590.0250.0130.0130.0110.0540.0090.1400.7245000001
1700.3500.1400.2000.0431.350.1502.440.740.0840.0380.0750.0150.2400.1100.6000.846700000017
3000.1700.0730.1300.0180.860.0961.480.770.0450.0200.0480.0050.1200.0540.3100.846200000016
4500.1600.0690.1200.0180.860.0931.440.770.0440.0160.0440.0060.1100.0560.2900.8782000002
6000.1600.0650.1100.0211.180.1201.840.790.0940.0360.0760.0080.2000.0580.5100.80190000005
7500.0890.0370.0670.0110.590.0550.940.780.0730.0320.0690.0060.1700.0400.4100.78160000004
9000.0870.0380.0690.0100.530.0530.860.780.0730.0310.0890.0060.1700.0380.4300.815500000014
10500.0770.0330.0490.0070.320.0330.560.730.0550.0240.0550.0030.0830.0300.2600.798900000022
12000.0750.0310.0450.0060.280.0260.510.710.0540.0230.0430.0020.0680.0200.2200.745600000014
13500.0870.0350.0460.0060.260.0250.500.690.0490.0200.0340.0020.0600.0140.1900.713900000010
15000.0760.0310.0400.0050.230.0200.440.680.0370.0170.0290.0020.0440.0100.1400.704500000011
20000.0550.0220.0250.0030.150.0140.290.660.0250.0130.0180.0010.0250.0050.0910.65310000008