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Villanger, Gro D (2011): (Table 1) Circulating levels of TT3 and TT4, and age, length, girth, and estimated body mass in polar bears (Ursus maritimus) from East Greenland 1999-2001 [dataset]. PANGAEA, https://doi.org/10.1594/PANGAEA.841460, Supplement to: Villanger, Gro D; Jenssen, Bjørn Munro; Fjeldberg, Rita R; Letcher, Robert J; Muir, Derek C G; Kirkegaard, Maja; Sonne, Christian; Dietz, Rune (2011): Exposure to mixtures of organohalogen contaminants and associative interactions with thyroid hormones in East Greenland polar bears (Ursus maritimus). Environment International, 37(4), 694-708, https://doi.org/10.1016/j.envint.2011.01.012

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Abstract:
We investigated the multivariate relationships between adipose tissue residue levels of 48 individual organohalogen contaminants (OHCs) and circulating thyroid hormone (TH) levels in polar bears (Ursus maritimus) from East Greenland (1999-2001, n = 62), using projection to latent structure (PLS) regression for four groupings of polar bears; subadults (SubA), adult females with cubs (AdF_N), adult females without cubs (AdF_S) and adult males (AdM). In the resulting significant PLS models for SubA, AdF_N and AdF_S, some OHCs were especially important in explaining variations in circulating TH levels: polybrominated diphenylether (PBDE)-99, PBDE-100, PBDE-153, polychlorinated biphenyl (PCB)-52, PCB-118, cis-nonachlor, trans-nonachlor, trichlorobenzene (TCB) and pentachlorobenzene (QCB), and both negative and positive relationships with THs were found. In addition, the models revealed that DDTs had a positive influence on total 3,5,3'-triiodothyronine (TT3) in AdF_S, and that a group of 17 higher chlorinated ortho-PCBs had a positive influence on total 3,5,3',5'-tetraiodothyronine (thyroxine, TT4) in AdF_N. TH levels in AdM seemed less influenced by OHCs because of non-significant PLS models. TH levels were also influenced by biological factors such as age, sex, body size, lipid content of adipose tissue and sampling date. When controlling for biological variables, the major relationships from the PLS models for SubA, AdF_N and AdF_S were found significant in partial correlations. The most important OHCs that influenced TH levels in the significant PLS models may potentially act through similar mechanisms on the hypothalamic-pituitary-thyroid (HPT) axis, suggesting that both combined effects by dose and response addition and perhaps synergistic potentiation may be a possibility in these polar bears. Statistical associations are not evidence per se of biological cause-effect relationships. Still, the results of the present study indicate that OHCs may affect circulating TH levels in East Greenland polar bears, adding to the "weight of evidence" suggesting that OHCs might interfere with thyroid homeostasis in polar bears.
Related to:
Dietz, Rune; Rigét, Frank F; Sonne, Christian; Letcher, Robert J; Born, Erik W; Muir, Derek C G (2004): (Table 2) Organochlorine concentrations in polar bears (Ursus maritimus) from East Greenland 1999-2001 [dataset]. PANGAEA, https://doi.org/10.1594/PANGAEA.841462 (See this dataset for source data of Table 2 of Villanger et al. 2011)
Further details:
Derocher, Andrew E; Wiig, Øystein (2002): Postnatal growth in body length and mass of polar bears (Ursus maritimus) at Svalbard. Journal of Zoology, 256(3), 343-349, https://doi.org/10.1017/S0952836902000377
Coverage:
Median Latitude: 71.500000 * Median Longitude: -25.000000 * South-bound Latitude: 69.000000 * West-bound Longitude: -25.000000 * North-bound Latitude: 74.000000 * East-bound Longitude: -25.000000
Date/Time Start: 1999-01-01T00:00:00 * Date/Time End: 2002-12-31T00:00:00
Event(s):
ScoresbyS_area * Latitude Start: 69.000000 * Longitude Start: -25.000000 * Latitude End: 74.000000 * Longitude End: -25.000000 * Date/Time Start: 1999-01-01T00:00:00 * Date/Time End: 2002-12-31T00:00:00 * Location: East Greenland * Method/Device: Biological sample (BIOS)
Comment:
Body mass was calculated based on measured body length and girth according to Derocher and Wiig (2002). The subadult (SubA) group consists of young females (<5 years) and young males (<6 years). The adult males (AdM) are >=6 years. The adult females are >=5 years and subgrouped into solitary adult females (without cubs; AdF_S) and nursing adult females (with cubs; AdF_N).
Data extracted in the frame of a joint ICSTI/PANGAEA IPY effort, see http://doi.pangaea.de/10.1594/PANGAEA.150150
Parameter(s):
#NameShort NameUnitPrincipal InvestigatorMethod/DeviceComment
1SpeciesSpeciesVillanger, Gro D
2GroupGroupVillanger, Gro D
3Time coverageCoverageVillanger, Gro D
4Sample amount, subsetN subset#Villanger, Gro DTT4
5Thyroxine, totalTT4nmol/lVillanger, Gro Dmean
6Thyroxine, standard deviationT4 std dev±Villanger, Gro D
7Thyroxine, totalTT4nmol/lVillanger, Gro Dmedian
8Thyroxine, totalTT4nmol/lVillanger, Gro Dmin
9Thyroxine, totalTT4nmol/lVillanger, Gro Dmax
10Sample amount, subsetN subset#Villanger, Gro DTT3
11Triiodothyronine, totalTT3nmol/lVillanger, Gro Dmean
12Triiodothyronine, standard deviationT3 std dev±Villanger, Gro D
13Triiodothyronine, totalTT3nmol/lVillanger, Gro Dmedian
14Triiodothyronine, totalTT3nmol/lVillanger, Gro Dmin
15Triiodothyronine, totalTT3nmol/lVillanger, Gro Dmax
16Sample amount, subsetN subset#Villanger, Gro Dcapture day
17Day of the yearDOYdayVillanger, Gro Dof capture, mean
18Standard deviationStd dev±Villanger, Gro Dcapture day
19Day of the yearDOYdayVillanger, Gro Dof capture, median
20Day of the yearDOYdayVillanger, Gro Dof capture, min
21Day of the yearDOYdayVillanger, Gro Dof capture, max
22Sample amount, subsetN subset#Villanger, Gro Dage
23Age, relative, number of yearsAgeaVillanger, Gro Dmean
24Age, standard deviationAge std dev±Villanger, Gro D
25Age, relative, number of yearsAgeaVillanger, Gro Dmedian
26Age, relative, number of yearsAgeaVillanger, Gro Dmin
27Age, relative, number of yearsAgeaVillanger, Gro Dmax
28Sample amount, subsetN subset#Villanger, Gro Dlength
29LengthlmVillanger, Gro Dmean
30Length, standard deviationl std dev±Villanger, Gro D
31LengthlmVillanger, Gro Dmedian
32LengthlmVillanger, Gro Dmin
33LengthlmVillanger, Gro Dmax
34Sample amount, subsetN subset#Villanger, Gro Dgirth
35Girth, axillaryg axmmVillanger, Gro Dmean
36Standard deviationStd dev±Villanger, Gro Dgirth
37Girth, axillaryg axmmVillanger, Gro Dmedian
38Girth, axillaryg axmmVillanger, Gro Dmin
39Girth, axillaryg axmmVillanger, Gro Dmax
40Sample amount, subsetN subset#Villanger, Gro Dmass
41Ursus maritimus, massU. maritimus mkgVillanger, Gro Dmean
42Mass, standard deviationMass std dev±Villanger, Gro D
43Ursus maritimus, massU. maritimus mkgVillanger, Gro Dmedian
44Ursus maritimus, massU. maritimus mkgVillanger, Gro Dmin
45Ursus maritimus, massU. maritimus mkgVillanger, Gro Dmax
Size:
180 data points

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