Mercury levels in fish in the Valencian Community: temporal evolution (2011-2017) and associated factors

e202309073

Authors

  • Carolina Blanco Servicio de Medicina Preventiva; Hospital Universitario Doctor Peset. Valencia. España.
  • Ferran Ballester Departamento de Enfermería; Universitat de València. Valencia. España. / Unidad Mixta en Epidemiología y Salud Ambiental de FISABIO; Universitat Jaume I-Universitat de València. Valencia. España. / Consorcio de Investigación Biomédica en Red de Epidemiología y Salud Pública (CIBERESP). Madrid. España.
  • Rosario Báguena FISABIO-Salud Pública, Área de Seguridad Alimentaria; Generalitat Valenciana. Valencia. España.
  • Silvia Marín FISABIO-Salud Pública, Área de Seguridad Alimentaria; Generalitat Valenciana. Valencia. España.
  • Sabrina Llop Unidad Mixta en Epidemiología y Salud Ambiental de FISABIO; Universitat Jaume I-Universitat de València Valencia. España. / Consorcio de Investigación Biomédica en Red de Epidemiología y Salud Pública (CIBERESP). Madrid. España.
  • Ulises López-González Servicio de Medicina Preventiva; Hospital Universitario Doctor Peset. Valencia. España.
  • Gabriel Riutort-Mayol FISABIO-Salud Pública, Área de Ambiente y Salud; Generalitat Valenciana. Valencia. España.
  • Raquel Soler-Blasco Departamento de Enfermería; Universitat de València. Valencia. España. / Unidad Mixta en Epidemiología y Salud Ambiental de FISABIO; Universitat Jaume I-Universitat de València. Valencia. España. / Consorcio de Investigación Biomédica en Red de Epidemiología y Salud Pública (CIBERESP). Madrid. España.

Keywords:

Mercury, THg, MeHg, Fish, Species, Tendency, Food Safety

Abstract

BACKGROUND // Mercury (Hg) is a toxic metal, and dietary exposure is the main one in humans, especially fish consumption. In order to reduce Hg exposure, maximum levels in fish products have been established. We aimed to describe total mercury (THg) and methylmercury (MeHg) concentrations in fish species consumed in Comunitat Valenciana, as well as factors associated and their tendency during the period 2011-2017.
METHODS // A retrospective descriptive study of Hg levels in fish meat samples in Comunitat Valenciana between 2011 and 2017 and their temporal trend was carried out, both in general and by fish groups. Data comes from Generalitat Valenciana’s Health Surveillance of Food Program. We created multivariate linear regression models to evaluate the association between sampling year, fish group and origin and THg (n=560) / MeHg (n=206) concentrations. The average annual trend of THg and MeHg levels throughout the period was evaluated.
RESULTS // The median was 0.20 mg/kg for THg and 0.14 mg/kg for MeHg. Swordfish, fresh tuna/albacore and canned tuna, in that order, showed the highest concentrations. Global tendency of THg levels was descending when adjusting by swordfish annual percentage. When we analized the tendency in swordfish, we observed a 7% decrease on average per year.
CONCLUSIONS // Global temporal trend of THg levels in fish in Comunitat Valenciana during the period 2011-2017 is descending after adjusting by the relative weight of swordfish over the total number of samples by year. We observe a descending tendency when studied by species (swordfish).

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References

Global Mercury Assessment 2018. UNEP-UN Environment Programme [Inter-net]. Disponible en: https://www.unep.org/resources/publication/global-mercury-assessment-2018

Commission Regulation (EC) No 1881/2006 of 19 December 2006 setting max-imum levels for certain contaminants in foodstuffs (Text with EEA relevance). 2006 [Internet]. Disponible en: https://eur-lex.europa.eu/legal-content/EN/ALL/?uri=celex%3A32006R1881

Toxicological Profile for Mercury. ATSDR 2022 [Internet]. Disponible en: https://www.atsdr.cdc.gov/toxprofiles/tp46.pdf

Afandiyev I, Alimonti A, Barbosa F, Besbelli N, Bose-O`Reilly S et al. Children’s exposure to mercury compounds. 2010;1-104.

Bjerregaard P, Andersen CBI, Andersen O. Ecotoxicology of Metals-Sources, Transport, and Effects on the Ecosystem. Handbook on the Toxicology of Metals: Fourth Edition. 2015;1:425-459.

European Food Safety Authority. Scientific Opinion on the risk for public health related to the presence of mercury and methylmercury in food. EFSA Journal. 2012;10(12).

Mercury Levels in Commercial Fish and Shellfish (1990-2012). FDA [Internet]. Disponible en: https://www.fda.gov/food/metals-and-your-food/mercury-levels-commercial-fish-and-shellfish-1990-2012

Aesan-Agencia Española de Seguridad Alimentaria y Nutrición [Internet]. Dis-ponible en: https://www.aesan.gob.es/AECOSAN/web/seguridad_alimentaria/ampliacion/Hg.htm

Reglamento (UE) 2022/617 de la Comisión de 12 de abril de 2022 por el que se modifica el Reglamento (CE) Nº 1881/2006 en lo que respecta al contenido máximo de Hg en el pescado y la sal. [Internet]. Disponible en: https://www.boe.es/doue/2022/115/L00060-00063.pdf

Reglamento (CE) Nº 1881/2006 de la Comisión de 19 de diciembre de 2006 por el que se fija el contenido máximo de determinados contaminantes en los pro-ductos alimenticios. [Internet]. Disponible en: https://www.boe.es/doue/2006/364/L00005-00024.pdf

European Food Safety Authority. Statement on the benefits of fish/seafood con-sumption compared to the risks of methylmercury in fish/seafood. EFSA Journal. 2015;13(1).

European Food Safety Authority. Scientific Opinion on health benefits of seafood (fish and shellfish) consumption in relation to health risks associated with ex-posure to methylmercury. EFSA Journal. 2014;12(7):3761.

Recomendaciones de consumo de pescado por presencia de mercurio de la Agencia Española de Seguridad Alimentaria y Nutrición (AESAN) [Internet]. Disponible en: https://www.aesan.gob.es/AECOSAN/docs/documentos/publicaciones/seguridad_alimentaria/RECOMENDACIONES_consumo_pescado_MERCURIO_AESAN_WEB.PDF

Castaño A, Pedraza-Díaz S, Cañas AI, Pérez-Gómez B, Ramos JJ, Bartolomé M et al. Mercury levels in blood, urine and hair in a nation-wide sample of Spa-nish adults. Science of the Total Environment. 2019;670:262-270.

Marín S, Pardo O, Báguena R, Font G, Yusà V. Dietary exposure to trace ele-ments and health risk assessment in the region of Valencia, Spain: a total diet study. Food Additives & Contaminants:Part A. 2016;34(2):228-240.

Marín S, Pardo O, Sánchez A, Sanchis Y, Vélez D, Devesa V et al. Assessment of metal levels in foodstuffs from the Region of Valencia (Spain). Toxicology Re-ports. 2018;5:654-670.

Memoria del Plan de Control Oficial de la cadena alimentaria 2017. Plan de Se-guridad Alimentaria de la Comunitat Valenciana. [Internet]. Disponible en: https://www.sp.san.gva.es/DgspPortal/docs/MEMORIA_CO_ANUAL_ALIMENTARIA2017.pdf

Brocca D, Bocca V. Chemical monitoring reporting guidance: 2022 data collec-tion. EFSA Supporting Publications. 2022;19(1).

Third National Report on Human Exposure to Environmental Chemicals De-partment of Health and Human Services Centers for Disease Control and Pre-vention. 2005; [Internet]. Disponible en: https://clu-in.org/download/contaminantfocus/pcb/third-report.pdf

Ortega-García JA, Rodriguez K, Calatayud M, Martin M, Vélez D, Devesa V et al. Estimated intake levels of methylmercury in children, childbearing age and pregnant women in a Mediterranean region, Murcia, Spain. European Journal of Pediatrics. 2008;168(9):1075-1080.

Di Lena G, Casini I, Caproni R, Fusari A, Orban E. Total mercury levels in com-mercial fish species from Italian fishery and aquaculture. Food Additives and Contaminants: Part B Surveillance. 2017;10(2):118-127.

Crépet A, Tressou J, Verger P, Leblanc JC. Management options to reduce expo-sure to methyl mercury through the consumption of fish and fishery products by the French population. Regulatory Toxicology and Pharmacology. 2005;42(2):179-189.

Groth E. Ranking the contributions of commercial fish and shellfish varieties to mercury exposure in the United States: Implications for risk communication. Environmental Research. 2010;110(3):226-236.

Llull RM, Garí M, Canals M, Rey-Maquieira T, Grimalt JO. Mercury concentra-tions in lean fish from the Western Mediterranean Sea: Dietary exposure and risk assessment in the population of the Balearic Islands. Environmental Re-search. 2017;158:16-23.

Capodiferro M, Marco E, Grimalt JO. Wild fish and seafood species in the wes-tern Mediterranean Sea with low safe mercury concentrations. Environmental Pollution. 2022;314.

Grieb TM, Fisher NS, Karimi R, Levin L. An assessment of temporal trends in mercury concentrations in fish. Ecotoxicology. 2019;29(10):1739-1749.

Bonito LT, Hamdoun A, Sandin SA. Evaluation of the global impacts of mitiga-tion on persistent, bioaccumulative and toxic pollutants in marine fish. PeerJ. 2016;4(1).

Perelló G, Llobet JM, Gómez-Catalán J, Castell V, Centrich F, Nadal M et al. Human Health Risks Derived from Dietary Exposure to Toxic Metals in Catalo-nia, Spain: Temporal Trend. Biological Trace Element Research. 2014;162(1):26-37.

González N, Marquès M, Nadal M, Domingo JL. Temporal trend of the dietary exposure to metals/metalloids: A case study in Tarragona County, Spain. Food Research International. 2021;147:110469.

Minamata Convention on Mercury. Text and Annexes. United Nations Environ-ment Programme 2019 [Internet]. Disponible en: https://www.mercuryconvention.org/sites/default/files/2021-06/Minamata-Convention-booklet-Sep2019-EN.pdf

Published

2023-09-08

How to Cite

1.
Blanco C, Ballester F, Báguena R, Marín S, Llop S, López-González U, et al. Mercury levels in fish in the Valencian Community: temporal evolution (2011-2017) and associated factors: e202309073. Rev Esp Salud Pública [Internet]. 2023 Sep. 8 [cited 2025 May 24];97:20 páginas. Available from: https://ojs.sanidad.gob.es/index.php/resp/article/view/151

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