The impact of preparing food in aluminum cookware on human health – a literature review
DOI:
https://doi.org/10.12923/2083-4829/2024-0016Keywords:
aluminum, cooking and eating utensils, food safety, neurotoxicityAbstract
Introduction. Aluminum is an element commonly found in the environment. It is used in various industrial sectors, for example as a manufacturing material for food-grade utensils.
Aim. The aim of this scientific paper is to answer to the question of whether people expose their health to the harmful effects of aluminum by utilising these types of items for preparing and storing food.
Description of the state of knowledge. Aluminum has a proven noxious impact on the human body. Due to its neurotoxic properties, it may induce clinical symptoms. Excessive exposure to this element is also associated with the occurrence of bladder and lung cancer, while the connection with breast tumours remains debatable. Additionally, aluminum can be harmful to our health, as a component of some medical preparations.
Conclusions. It is crucial to emphasise the necessity of complying with the amounts of aluminum consumption recommended by international institutions. Short-term use of aluminum pots does not pose a threat to our well-being. Also, long-term usage in most cases does not lead to exceeding the aluminum consumption standards, although children may be at risk. However, it is good practice to avoid cooking acidic products in aluminum utensils. Furthermore, it is worth washing the dishes according to the manufacturers’ recommendations and replacing them with new ones every few years. In addition, some scientists suggest choosing pots made of different materials, e.g. titanium. Moreover, a noticeable decrease in the levels of vitamin B1 and C in food prepared in aluminum dishes may be one of the reasons for their lower nutritional value, however this issue should be examined further.
References
1. Ecotoxicology of Aluminium. Polish J Environ Stud. 2002;11(3):199-203.
2. Tietz T, Lenzner A, Kolbaum AE, et al. Aggregated aluminium exposure: risk assessment for the general population. Arch Toxicol. 2019;93(12):3503-21. Review match
3. Bryliński Ł, Kostelecka K, Woliński F, et al. Aluminium in the Human Brain: Routes of penetration, toxicity, and resulting complications. Int J Mol Sci. 2023;24(8):7228. Review match
4. Ma J, Jiang G, Zheng W, Zhang M. A longitudinal assessment of aluminum contents in foodstuffs and aluminum intake of residents in Tianjin metropolis. Food Sci Nutr. 2019;7(3):997-1003. Review match
5. Corkins MR. Committee on nutrition. Aluminum effects in infants and children. Pediatrics. 2019;144(6):e20193148.
6. de Ligt R, van Duijn E, Grossouw D, et al. Assessment of dermal absorption of aluminum from a representative antiperspirant formulation using a 26 Al microtracer approach. Clin Transl Sci. 2018;11(6):573-81. Review match
7. Riihimäki V, Valkonen S, Engström B, et al. Behavior of aluminum in aluminum welders and manufacturers of aluminum sulfate – impact on biological monitoring. Scand J Work Environ Health. 2008;34(6):451-62. Review match
8. Colomina MT, Peris-Sampedro F. Aluminum and Alzheimer’s Disease. Adv Neurobiol. 2017;18:183-97.
9. Huat TJ, Camats-Perna J, Newcombe EA, et al. Metal toxicity links to Alzheimer’s disease and neuroinflammation. J Mol Biol. 2019;431(9):1843-68.
10. Asghar H, Siddiqui A, Batool L, Batool Z, Ahmed T. Post-exposure self-recovery reverses oxidative stress, ameliorates pathology and neurotransmitters imbalance and rescues spatial memory after time-dependent aluminum exposure in rat brain. Biometals. 2024;37(4):819-38. Review match
11. Kandimalla R, Vallamkondu J, Corgiat EB, et al. Understanding aspects of Aluminum exposure in Alzheimer’s Disease development. Brain Pathol. 2016;26(2):139-54. Review match
12. Klotz K, Weistenhöfer W, Neff F, Hartwig A, van Thriel C, Drexler H. The health effects of Aluminum exposure. Dtsch Arztebl Int. 2017;114(39):653-659. Review match
13. Exley C. Aluminum should now be considered a primary etiological factor in Alzheimer’s Disease. J Alzheimers Dis Rep. 2017;1(1):23-25. Review match
14. Darbre PD. Recorded quadrant incidence of female breast cancer in Great Britain suggests a disproportionate increase in the upper outer quadrant of the breast. Anticancer Res. 2005;25(3c):2543-2550.
15. Alasfar RH, Isaifan RJ. Aluminum environmental pollution: the silent killer. Environ Sci Pollut Res Int. 2021;28(33):44587-44597. Review match
16. Kuman OE, Altundaş HE, Acar KD, et al. A current example of historical cases: Occupational pulmonary aluminosis. Turk Thorac J. 2021;22(1):83-85.
17. McClure ES, Vasudevan P, DeBono N, et al. Cancer and noncancer mortality among aluminum smelting workers in Badin, North Carolina. Am J Ind Med. 2020;63(9):755-65. Review match
18. IARC Working Group on the Evaluation of Carcinogenic Risks to Humans. Chemical agents and related occupations. IARC Monogr Eval Carcinog Risks Hum. 2012;100(Pt F):9-562.
19. Klein GL. Aluminum toxicity to bone: A multisystem effect? Osteoporos Sarcopenia. 2019;5(1):2-5.
20. European Food Safety Authority (EFSA). Safety of aluminium from dietary intake – Scientific opinion of the Panel on Food Additives, Flavourings, Processing Aids and Food Contact Materials (AFC). EFSA J. 2008;6(7):754. Review match
21. Seventy-fourth report of the Joint FAO/WHO Expert Committee on Food Additives. Evaluation of certain food additives and contaminants. [http://apps.who.int/iris/bitstream/10665/44788/1/WHO_TRS_ 966_eng.pdf]. (access: 10.04.2024).
22. Council of Europe (2013) Resolution CM/Res (2013) 9. Metals and alloys used in food contact materials and articles. A practical guide for manufacturers and regulators prepared by the Committee of Experts on Packaging Materials for Food and Pharmaceutical Products (P-SC-EMB). Strasbourg; 2013.
23. Bodai BI, Nakata TE, Wong WT, et al. Lifestyle medicine: A brief review of its dramatic impact on health and survival. Perm J. 2018;22:17-025.
24. Windisch J, Keppler BK, Jirsa F. Aluminum in coffee. ACS Omega. 2020;5(25):15335-43. Review match
25. Stahl T, Falk S, Rohrbeck A, et al. Migration of aluminum from food contact materials to food-a health risk for consumers? Part II of III: migration of aluminum from drinking bottles and moka pots made of aluminum to beverages. Environ Sci Eur. 2017;29(1):18. Review match
26. Stahl T, Falk S, Rohrbeck A, et al. Migration of aluminum from food contact materials to food-a health risk for consumers? Part III of III: migration of aluminum to food from camping dishes and utensils made of aluminum. Environ Sci Eur. 2017;29(1):17. Review match
27. Alabi OA, Adeoluwa YM. Mutagenicity and genotoxicity of water boiled in aluminum pots of different duration of use using SOS chromotest and Ames fluctuation test. Toxicol Res (Camb). 2021;10(4):771-6. Review match
28. Hiller J, Göen T, Seibold-Wulf N, Meyer S, Drexler H. Effect of an aluminum foil-processed diet on internal human aluminum burden. Environ Int. 2023;177:108000. Review match
29. Onyeka UE, Ibeawuchi ON. Loss of food nutrients orchestrated by cooking pots: a common trend in developing world. J Food Sci Technol. 2021;58(8):2906-13. Review match
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