| Literature DB >> 34948982 |
Antonio Belmonte1, Pilar Muñoz2, Juan Santos-Echeandía3, Diego Romero4.
Abstract
Mercury (Hg) is an important heavy metal to consider in marine predators, while selenium (Se) has a natural antagonistic effect on this metal in fish. The Atlantic bluefin tuna (ABFT, Thunnus thynnus) is a pelagic top-level predator of the trophic web and their Hg muscular content is an object of concern in food safety. Nevertheless, little is known about levels of this metal in remaining tissues, which may be important as by-product source, and its relationship with Se. Thus, concentration of both elements in liver, kidney, brain, gill and bone, in addition to muscle, of ABFT were determined. The kidney was the tissue with the highest concentration of Hg (Total-Hg, THg) and Se, and the Se/THg concentration ratio was similar in all tissues, except bone and muscle. The Selenium Health Benefit Value (HBVSe) was positive in each specimen and tissue, indicating that the Se plays an important role against Hg not only in the muscle.Entities:
Keywords: Atlantic bluefin tuna; Mediterranean Sea; farmed; mercury; selenium; tissues
Mesh:
Substances:
Year: 2021 PMID: 34948982 PMCID: PMC8708749 DOI: 10.3390/ijerph182413376
Source DB: PubMed Journal: Int J Environ Res Public Health ISSN: 1660-4601 Impact factor: 3.390
Concentration of THg and Se (µg g−1, ww), Se/THg concentration ratio and HBVSe in tissues of ABFT. Data: mean±standard error, minimum-maximum.
| THg | Se | Se/THg | HBVSe | |
|---|---|---|---|---|
| Brain | 0.198 ± 0.010 | 2.188 ± 0.145 | 12.672 ± 1.124 | 27.664 ± 1.836 |
| Muscle | 0.737 ± 0.040 | 0.847 ± 0.110 | 1.435 ± 0.274 | 8.777 ± 1.500 |
| Liver | 0.566 ± 0.038 | 6.452 ± 0.298 | 12.881 ± 0.856 | 81.601 ± 3.770 |
| Kidney | 4.821 ± 0.371 | 51.776 ± 1.884 | 13.162 ± 1.025 | 654.663 ± 23.811 |
| Bone | 0.283 ± 0.013 | 1.736 ± 0.106 | 6.422 ± 0.379 | 21.875 ± 1.349 |
| Gill | 0.458 ± 0.025 | 6.024 ± 0.250 | 14.391 ± 0.843 | 76.216 ± 3.170 |
Figure 1Total Hg (a) and Se (b) concentrations of ABFT by tissue and sex. For each tissue, the same lowercase letter shows statistical differences between males and females. Bars show standard error. For each tissue, "the same lowercase letter (a, b, c and d in Figure 1a; a and b in Figure 1b) shows statistical differences between males and females”. For example, for liver, “a” is the same lowercase in male and female, so there is statistical differences between them.
Figure 2Se/THg concentration ratio of ABFT by tissue and sex. For each tissue, the same lowercase letter shows statistical differences between males and females. Bars show standard error. For each tissue, "the same lowercase letter (a in Figure 2) shows statistical differences between males and females”. For gill, “a” is the same lowercase in male and female, so there is statistical differences between them.
Figure 3Selenium Health Benefit Value of ABFT by tissue and sex. For each tissue, the same lowercase letter shows statistical differences between males and females. Bars show standard error. For each tissue, "the same lowercase letter (a and b in Figure 3) shows statistical differences between males and females”. For liver, “a” is the same lowercase in male and female, so there is statistical differences between them.
Statistically significant correlations between biometric data, age and elements concentration in tissues of ABFT; L = liver, K = kidney, Bo = bone, M = muscle, G = gills, Br = brain.
| Fork Length | Weight | Age | THg | Se | |||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Whole |
|
| Whole |
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| Whole |
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| Whole |
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| Whole |
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| |
| Fork length | |||||||||||||||
| Weight | 0.827 ** | 0.692 ** | 0.850 ** | ||||||||||||
| Age | 0.369 * | 0.521 ** | |||||||||||||
| THg | 0.330 * K | 0.448 * K | −0.326 * L | ||||||||||||
| Se | 0.319 * K | 0.477 * Bo | 0.484 * K | -0.399 ** L | 0.476 * K | −0.305 * M | 0.395 ** L | 0.594 ** K | 0.531 * K | ||||||
** Significant correlation at 0.01 level. * Significant correlation at 0.05 level.
Statistically significant correlations for THg concentration between tissues of ABFT.
| Brain | Muscle | Liver | Kidney | Bone | Gills | |||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Whole |
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| Whole |
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| Whole |
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| Whole |
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| Whole |
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| Whole |
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| |
| Brain | ||||||||||||||||||
| Muscle | 0.355 * | 0.459 * | ||||||||||||||||
| Liver | 0.632 ** | 0.465 * | 0.571 * | 0.463 ** | 0.625 ** | |||||||||||||
| Kidney | ||||||||||||||||||
| Bone | 0.509 ** | 0.518 ** | 0.362 * | 0.433 ** | ||||||||||||||
| Gills | 0.532 ** | 0.531 ** | 0.403 ** | 0.550 * | 0.719 ** | 0.420 * | 0.816 ** | 0.403 ** | 0.665 ** | 0.371 * | 0.519 ** | |||||||
** Significant correlation at 0.01 level. * Significant correlation at 0.05 level.
Statistically significant correlations for Se concentration between tissues of ABFT.
| Brain | Muscle | Liver | Kidney | Bone | Gills | |||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Whole |
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| Whole |
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| Whole |
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| Whole |
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| Whole |
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| Whole |
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| |
| Brain | ||||||||||||||||||
| Muscle | ||||||||||||||||||
| Liver | ||||||||||||||||||
| Kidney | 0.522 ** | |||||||||||||||||
| Bone | 0.447 ** | 0.564 * | 0.556 ** | |||||||||||||||
| Gills | ||||||||||||||||||
** Significant correlation at 0.01 level. * Significant correlation at 0.05 level.
Figure 4Correlations between tissues for THg concentration in ABFT. The solid line indicates a p-value < 0.01, and a dashed line indicates a p-value < 0.05. The thickness of the line represents the strength of the relationship.
Total mercury and Se concentrations in ABFT from Mediterranean Sea. Data: mean ± standard deviation, µg g−1, ww.
| Location | n | Origin | Weight (Kg) | Tissue | Hg | Se | Reference |
|---|---|---|---|---|---|---|---|
| South-East Malta | 40 | Farm | 238 ± 93 | Muscle | 0.61 ± 0.20 | 1.07 ± 0.86 | [ |
| Sardinia (Italy) | 33 | Wild | 45 ± 26 | Muscle | 1.68 ± 0.58 | 0.64 ± 0.31 | |
| Ionian Sea (Greece) | 20 | Farm | 80–540 | Muscle | 0.57 ± 0.21 | na | [ |
| Adriatic Sea | 29 | Farm | 100–300 | Muscle | 0.899 | na | [ |
| 15 | Liver | 1.165 | na | ||||
| Strait of Messina (Italy) | 14 | Wild | 50-190 | Muscle | 3.03 ± 0.55 | na | [ |
| Liver | 1.88 ± 0.54 | na | |||||
| Ionian Sea | 73 | Wild | 2.85–4.36 | Muscle | 0.20 ± 0.07 | na | [ |
| Liver | 0.39 ± 0.10 | na | |||||
| Mediterranean Sea (Spain) | 3 | Wild | 0.74–1.085 | Muscle | 0.207 ± 0.087 | na | [ |
| Liver | 0.276 ± 0.005 | na | |||||
| Mediterranean Sea (Italy) | 23 | Wild | 130–290 | Muscle | 0.446 | 0.607 | [ |
| Tyrrenian Sea | 169 | Wild | 39.5 ± 43.8 | Muscle | 1.02 ± 0.99 | na | [ |
| Ionian Sea | 161 | Wild | 36.1 ± 23.53 | Muscle | 1.18 ± 0.85 | na | [ |
| Aegean Sea (Turkey) | 6 | Farm | 91.5 ± 2.59 | Muscle | 0.454 ± 0.048 | na | [ |
| 43 | 235.60 ± 75.53 | Muscle | 0.490 ± 0.064 | na | |||
| Tyrrhenian Sea | 20 | Farm | 56.4 ± 34.0 | Muscle | 0.61 | na | [ |
| Mediterranean Sea (Italy) | 23 | Farm | 135.7 ± 45.8 | Muscle | 0.660 ± 0.585 | na | [ |