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Human Exposure to Iodine from the Consumption of Edible Seaweeds

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Abstract

The increasing consumption of wakame algae (Undaria pinnatifida) and kombu (Laminaria ochroleuca) because of their culinary appeal and beneficial properties means there is a need to study the composition of these new foods. Algae stand out for their high iodine content, this being an essential element whenever it is ingested at recommended levels but which, ingested in high quantities, can cause harmful effects to health such as hyperthyroidism and even goiter. The iodine content in 30 samples of algae from different geographical origins (Asia and Europe) has been determined by oxidation-reduction titration with sodium thiosulfate. European kombu algae (27.7 ± 5.4 mg/kg dry weight) have the highest mean average iodine concentrations. European algae have higher iodine content than Asian algae. Significant differences (p < 0.05) have been recorded among wakame algae according to geographical origin. The consumption of 4 g/day of European kombu algae means an intake of 111 μg/day of iodine, which is a value close to the RDI (recommended daily intake) set at 150 μg/day. It is necessary to monitor iodine levels in algae to avoid excessive intakes and harmful effects on health.

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References

  1. EFSA (European Food Safety Authority) (2014c). Scientific opinion on dietary reference values for iodine. EFSA J 12(5): 3660

  2. Hetzel BS, Maberly GF (1986) Iodine. En: Mertz W (Eds), Trace elements in human and animal nutrition. 5th edition, vol. 2. Academic Press Inc, USA

  3. Lauterbach A, Uber G (2011) Iodine and iodine compounds. Kirk-Othmer Encyclopedia of Chemical Technology. John Wiley&Sons, Inc, USA

  4. Blanco A (2006) Química Biológica. Octava edición, Editorial El Ateneo, Spain

    Google Scholar 

  5. Morreale de Escobar G, Escobar del Rey F (2000) El yodo durante la gestación, lactancia y primera infancia. Cantidades mínimas y máximas: de microgramos a gramos. Anal Esp Ped 53(1):1–5

    Article  CAS  Google Scholar 

  6. Zimmermann MB (2011) The role of iodine in human growth and development. Semin Cell Dev Biol 22:645–652

    Article  CAS  Google Scholar 

  7. AECOSAN (Agencia Española de Consumo, Seguridad Alimentaria y Nutrición) (2012) Report of the Scientific Committee of the Spanish Agency for Food Safety and Nutrition (AESAN) for the assessment of the risk associated with the consumption of macroscopic algae with a high iodine content. Rev Com Cient 1–16

  8. Andersen S, Noahsen P, Rex KF, Florian-Sørensen HC, Mulvad G (2019) Iodine in edible seaweed, its absorption, dietary use, and relation to iodine nutrition in Arctic people. J Med Food 22:421–426

    Article  CAS  Google Scholar 

  9. Shelor CP, Dasgupta PK (2011) Review of analytical methods for the quantification of iodine in complex matrices. Anal Chim Acta 702:16–36

    Article  CAS  Google Scholar 

  10. Pennington JA (1990) A review of iodine toxicity reports. J Am Diet Assoc 90:1571–1581

    CAS  PubMed  Google Scholar 

  11. Martino E, Bartalena L, Bogazzi F, Braverman LE (2001) The effects of amiodarone en the thyroid. Endocr Rev 22:240–254

    CAS  PubMed  Google Scholar 

  12. Luo Y, Kawashima A, Ishido Y, Yoshihara A, Oda K, Hiroi N, Ito T, Ishii N, Suzuki K (2014) Iodine excess as an environmental risk factor for autoimmune thyroid disease. Int J Mol Sci 15(7):12895–12912

    Article  Google Scholar 

  13. Wang C, Yatsuya H, Li Y, Ota A, Tamakoshi K, Fujino Y, Mikami H, Iso H, Tamakoshi A (2016) Prospective study of seaweed consumption and thyroid cancer incidence in women: the Japan collaborative cohort study. Eur J Cancer Prev 25(3):239–245

    Article  CAS  Google Scholar 

  14. ATSDR (Agency for Toxic Substances and Disease Registry) (2004) Toxicological profile for iodine U.S. Department of Health and Human Services. Public Health Service, Atlanta

  15. IOM (Institute of Medicine) (2001) Dietary reference intakes for vitamin A, vitamin K, arsenic, boron, chromium, copper, iodine, iron, manganese, molybdenum, nickel, silicon, vanadium, and zinc. Food and Nutrition Board of the Institute of Medicine of the National Academies. National Academy Press, Washington (DC)

  16. Cherry P, O'Hara C, Magee PJ, McSorley EM, Allsopp P (2019) Risks and benefits of consuming edible seaweeds. Nutr Rev 77(5):307–329

    Article  Google Scholar 

  17. Jiménez-Escrig A, Gómez-Ordóñez E, Rupérez P (2011) Brown and red seaweeds as potential sources of antioxidant nutraceuticals. J Appl Physiol 77-86

  18. EC (2018) COMMISSION RECOMMENDATION (EU) 2018/464 of 19 March 2018 on the monitoring of metals and iodine in seaweed, halophytes and products based on seaweed (Text with EEA relevance). Off J Eur Union. L 78/16

  19. Senyk JI (1977) The determination of iodide in seaweed. A general chemistry research experience. J Chem Educ 54(8):511–513

    Article  CAS  Google Scholar 

  20. AOAC (Association of Official Agricultural Chemists) (2006) Official methods of analysis Minerals Analysis Iodine, volumetric - item 50. Association of Analytical Communities, Gaithersburg, MD, 17th edition. Reference data: Method 935.14; NFNAP; MIN; ID

  21. Lado Ali U, Al-Awwal N (2015) Determination of iodide in tropical seaweed (Halopteris filicina). Int J Sci Res 4(3):530–532

    Google Scholar 

  22. Paz S (2018) Determinación de metales y elementos traza en algas: Evaluación nutricional y toxicológica. Universidad de La Laguna, Spain, Tesis Doctoral

    Google Scholar 

  23. Pan G (2002) Confidence intervals for comparing two scale parameters based on Levene’s statistics. J Nonpar Stat 4:459–476

    Article  Google Scholar 

  24. Sangiuliano D, Rubio C, Gutiérrez AJ, González-Weller D, Revert C, Hardisson A, Zanardi E, Paz S (2017) Metal concentrations in samples of frozen cephalopods (cuttlefish, octopus, squid, and shortfin squid): an evaluation of dietary intake. J Food Protect 80(11):1867–1871

    Article  CAS  Google Scholar 

  25. Chakraborty S, Bhattacharya T, Singh G, Maity JP (2014) Benthic macroalgae as biological indicators of heavy metal pollution in the marine environments: a biomonitoring approach for pollution assessment. Ecotox Environ Safe 100:61–68

    Article  CAS  Google Scholar 

  26. Yeh TS, Hung NH, Lin TC (2014) Analysis of iodine content in seaweed by GC-ECD and estimation of iodine intake. J Food Drug Anal 22(2):189–196

    Article  CAS  Google Scholar 

  27. Dawczynski C, Schäfer U, Leiterer M, Jahreis G (2007) Nutritional and toxicological importance of macro, trace, and ultra-trace elements in algae food products. J Agric Food Chem 55(25):10470–10475

    Article  CAS  Google Scholar 

  28. Teas J, Pino S, Critchley A, Braverman LE (2004) Variability of iodine content in common commercially available edible seaweeds. Thyroid 14(10):836–841

    Article  CAS  Google Scholar 

  29. Mabeau S, Fleurence J (1993) Seaweed in food products: biochemical and nutritional aspects. Trends Food Sci Tech 4:103–107

    Article  CAS  Google Scholar 

  30. Romarís–Hortas V, García-Sartal C, Barciela-Alonso MC, Domínguez-González R, Moreda-Piñeiro A, Bermejo-Barrera P (2011) Bioavailability study using an in-vitro method of iodine and bromine in edible seaweed. Food Chem 124(4):1747–1752

    Article  Google Scholar 

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Correspondence to Soraya Paz.

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González, A., Paz, S., Rubio, C. et al. Human Exposure to Iodine from the Consumption of Edible Seaweeds. Biol Trace Elem Res 197, 361–366 (2020). https://doi.org/10.1007/s12011-019-01996-w

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  • DOI: https://doi.org/10.1007/s12011-019-01996-w

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