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Oral supplementation of vitamin D is safe and can be an effective strategy to fill the nutritional gap

Published online by Cambridge University Press:  09 March 2023

Jutta Dierkes
Affiliation:
Centre for Nutrition, Department of Clinical Medicine, University Bergen, Bergen, Norway
Manfred Eggersdorfer*
Affiliation:
Department of Internal Medicine, University Medical Center Groningen, Groningen, The Netherlands
*
*Corresponding author: Manfred Eggersdorfer, email [email protected]

Abstract

Type
Letter to the Editor
Creative Commons
Creative Common License - CCCreative Common License - BY
This is an Open Access article, distributed under the terms of the Creative Commons Attribution licence (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted re-use, distribution and reproduction, provided the original article is properly cited.
Copyright
Copyright © The Author(s), 2023. Published by Cambridge University Press on behalf of The Nutrition Society

Dear Editor,

This is with reference to the article ‘Physiological significance of vitamin D produced in skin compared with oral vitamin D’ published in Journal of Nutritional Science (2022), vol. 11, e13, page 1–5. We would be grateful if the Journal of Nutritional Science could publish this letter.

A recent paper by Fraser(Reference Fraser1) from the Sydney School of Veterinary Science, Faculty of Science, The University of Sydney addresses the safety of vitamin D applications describing an experiment in squirrel monkeys which has – in his view – shown that long-term supply of oral vitamin D in non-toxic amounts causes atherosclerosis in large arteries. In this paper, the author speculates about an aspect of vitamin D physiology that has been ignored – the mechanisms for the transport and processing from the two sources of vitamin D either from food or by endogenous synthesis in skin. He argues that the transport mechanism for the two sources is quite different. In the light of the angiotoxicity caused by oral vitamin D in animal experiments, he proposes that alternative strategies to food fortification and/or supplementation for addressing widespread vitamin D deficiency in humans should be considered.

The paper is a perspective paper, drawing on mechanistic insights, opinion and speculation to support physiological observations. The author deviates from typical intakes, recommendations and available clinical evidence for vitamin D. The author confuses nutritional and toxicological levels of vitamin D and 25(OH)D and contrary to authoritative health guidance, proposes UV-exposure and transdermal administration as preferred routes for obtaining optimal vitamin D status. While in nutritional studies, the effect of a bioactive is studied with doses in the range of a safe daily intake toxicological studies aim to identify the dose at which adverse effects happen. He argues that animal studies demonstrating adverse outcomes for vascular pathology underpin his argumentation. However, the primary in vivo study cited in the paper is one squirrel monkey trial – in this trial monkeys were fed a high dose of vitamin D, equivalent to 1000 μg/d for humans. This dose exceeds the established Upper Tolerable Level recommendation either provided by the Institute of Medicine (IOM) or the European Food and Safety Authority (EFSA) by 10-fold and exceeds the daily Dietary Reference Intake (15 μg/d) by the factor 67(Reference Ross, Taylor, Yaktine and Del Valle2,3) . In other words, the cited study is not a nutritional study.

The author speculates that oral intake of vitamin D is excessive beyond that which our body has evolved and the persistent oral consumption of 250 μg/d vitamin D is resulting in hypercalcaemia. However, the typical average oral intake of vitamin D from both food and supplements combined is in reality below 20 μg/d for people in Europe, in the USA and other regions(Reference Hilger, Friedel and Herr4Reference Lips, Cashman and Lamberg-Allardt8), and thus not comparable with the mentioned amount. This average intake is far below the IOM Upper Tolerable Level of 100 μg/d, while the author's level of concern of 250 μg/d is far above the Upper Tolerable Level. Reports of vitamin D overdose are rare in the literature. Several research groups and authorities evaluated the intake of vitamin D up to 15 000 IU/d (equivalent to 375 μg/d) and serum 25(OH)D up to 300 nmol/l were found to be safe(Reference Kimball, Mirhosseini and Holick9,Reference Amrein, Scherkl and Hoffmann10) . A recent review suggested that hypercalcaemia may be caused by extremely high vitamin D intake and being responsible for arterial calcification. However, evidence to explain the mechanisms of action by which excess exogenous vitamin D promotes calcification is lacking(Reference Wang, Zhou and Robertson11). In addition, there are also endogenous causes of hypervitaminosis D, such as increased production of 1,25(OH)2D as part of granulomatous disorders or lymphomas(Reference Tebben, Singh and Kumar12).

In recent years, several randomised controlled clinical trials using amounts of vitamin D in the range of 2000–4000 IU/d (50 to 100 μg/d) for several years have been published. These trials are a valuable source of data on the safety of long-term use of recommended as well as for higher doses of vitamin D in adults. Even though this supplementation with vitamin D did not result in all trials in the risk reduction of major non-communicable diseases (NCDs), side effects and adverse events, on the other hand, were rare in these studies and not different from the placebo groups.

It is well accepted that blood 25(OH)D levels are the appropriate measure of status, not bound v. unbound vitamin D-binding protein. It is important to realise that the author states that 50–80 nmol/l 25(OH)D in blood represents a ‘good’ vitamin D status. This range is consistent with expert recommendations for adequate status (either 50 or 75 nmol/l, depending on expert group)(Reference Hilger, Friedel and Herr4,Reference Bischoff-Ferrari13) . Interestingly, this concentration is usually achieved in the majority of adults (in the absence of endogenous synthesis) by doses now recommended by authorities and nutrition societies as daily allowance of 15–20 μg/d(Reference Lehmann, Riedel and Hirche14).

The author ignores the many studies and papers which describe the value and safety of food fortification and supplementation(Reference Niedermaier, Gredner and Kuznia15). Food fortification, oral supplementation with vitamin D and/or moderate UV-exposure to stimulate vitamin D production in skin are rated as safe to improve the vitamin D status of the population. Considering the high prevalence of vitamin D deficiency worldwide and the resulting severe consequences for human health, experts recommend that vitamin D deficiency urgently needs to be addressed in many countries by governments and healthcare authorities(Reference Cashman, Dowling and Skrabakova5,Reference Gronborg, Tetens and Ege6,Reference Niedermaier, Gredner and Kuznia15Reference Itkonen, Erkkola and Lamberg-Allardt17) .

The author would prefer vitamin D to be obtained via synthesis in the skin. Modelling studies have demonstrated that it would be challenging for many people to reach optimal D levels from sun exposure alone, based on seasonality, latitude, differences in skin type and cautions about sun exposure from dermatologists with the aim to prevent skin cancer. Reliance on endogenous synthesis does not work in many countries in the northern and southern hemisphere. For example, countries like Canada, Germany, the UK, Denmark, Norway, Finland, just to mention a few, do not get the sun with a wavelength range of 290–320 nm required for the endogenic synthesis for 5–8 months during the year(Reference Cashman18). Additionally, ability to produce vitamin D in the skin declines with aging(Reference MacLaughlin and Holick19). For this reason, the oral intake via food, fortified foods and/or supplements is an opportunity to fill the gap and achieve the recommended intake. The argument that oral supply of vitamin D has only been a strategy for the last 100 years is not right. Supplementation using cod liver oil tran is established for several hundreds of years and demonstrated to be safe and effective. Also, his proposal for transdermal injections of vitamin D can be a choice for patients but it is not practical for larger population groups.

The author explains his theory in detail how oral vitamin D is detrimental for vascular physiology, however, a search of the clinical literature provides plenty of evidence that vitamin D supplementation supports cardiovascular health and provides a wide range of other health benefits(Reference Amrein, Scherkl and Hoffmann10,Reference Grant, Boucher and Al Anouti20Reference Charoenngam and Holick22) . For example, observational studies have associated vitamin D supplementation with lower risk for heart disease, and neutral effect on coronary artery calcified plaque burden. In RCTs, vitamin D supplementation is protective or neutral for blood pressure(Reference Grant, Boucher and Al Anouti20). So, based on many human studies, vitamin D fortified foods and supplements in the recommended doses are a safe and can be an effective strategy to fill the nutritional gap.

It is also noteworthy, that Fraser is not discussing at all the differences of vitamin D2 and D3. Endogenously synthesised vitamin D will be vitamin D3, while orally obtained vitamin D can be either D2 or D3. There is some evidence that these forms have different effects on vitamin D status and metabolism(Reference Lehmann, Hirche and Stangl23,Reference Tripkovic, Wilson and Hart24) , and it was also suggested that the prevention of, for example, falls was different for supplements with vitamin D2 and D3(Reference Bischoff-Ferrari, Dawson-Hughes and Staehelin25). Differences between vitamin D2 and D3 may lead to confusion concerning vitamin D supplementation.

While there are clearly opportunities for more research on the role of vitamin D supplementation and the physiological significance of vitamin D produced in skin v. oral supplementation in our opinion, the author is overstating the significance of his findings. We do not agree the findings presented in this paper should form the basis for vitamin D supplementation in humans. The findings in this paper are far from conclusive and should be placed in the proper context because the conclusion in the paper ‘Physiological significance of vitamin D produced in skin compared with oral vitamin D’ is misleading and is not supported by the interesting, but very limited findings of this paper.

Acknowledgements

All authors designed the manuscript and read and approved the final manuscript.

The development of the paper received no external funding.

J. D. has no conflict of interest. M. E. is president of the Gesellschaft für Angewandte Vitaminforschung (Germany), he is a member of the scientific board of PM International and consults for companies in the nutrition and supplement field.

References

Fraser, DR (2022) Physiological significance of vitamin D produced in skin compared with oral vitamin D. J Nutr Sci 11, e13 15.CrossRefGoogle ScholarPubMed
Institute of Medicine (2011) In Dietary Reference Intakes for Calcium and Vitamin D [Ross, AC, Taylor, CL, Yaktine, AL, and Del Valle, HB, editors]. Washington: The National Academies Press.Google ScholarPubMed
EFSA NDA Panel (2009) Scientific opinion on the substantiation of health claims related to vitamin D and normal function of the immune system and inflammatory response (ID 154, 159), maintenance of normal muscle function (ID 155) and maintenance of normal cardiovascular function (ID 159) pursuant to article 13(1) of regulation (EC) No 1924/20061. EFSA J 8, 1468.Google Scholar
Hilger, J, Friedel, A, Herr, R, et al. (2014) A systematic review of vitamin D status in populations worldwide. Br J Nutr 111, 2345.CrossRefGoogle ScholarPubMed
Cashman, KD, Dowling, KG, Skrabakova, Z, et al. (2016) Vitamin D deficiency in Europe: pandemic? Am J Clin Nutr 103, 10331044.CrossRefGoogle ScholarPubMed
Gronborg, IM, Tetens, I, Ege, M, et al. (2019) Modelling of adequate and safe vitamin D intake in Danish women using different fortification and supplementation scenarios to inform fortification policies. Eur J Nutr 58, 227232.CrossRefGoogle ScholarPubMed
Cashman, KD (2022) Global differences in vitamin D status and dietary intake: a review of the data. Endocr Connect 11, e210282.CrossRefGoogle ScholarPubMed
Lips, P, Cashman, KD, Lamberg-Allardt, C, et al. (2019) Current vitamin D status in European and Middle East countries and strategies to prevent vitamin D deficiency: a position statement of the European Calcified Tissue Society. Eur J Endocrinol 180, 2354.CrossRefGoogle ScholarPubMed
Kimball, SM, Mirhosseini, N & Holick, MF (2017) Evaluation of vitamin D3 intakes up to 15,000 international units/day and serum 25-hydroxyvitamin D concentrations up to 300 nmol/L on calcium metabolism in a community setting. Dermatoendocrinol 9, e1300213.CrossRefGoogle Scholar
Amrein, K, Scherkl, M, Hoffmann, M, et al. (2020) Vitamin D deficiency 2.0: an update on the current status worldwide. Eur J Clin Nutr 74, 14981513.CrossRefGoogle ScholarPubMed
Wang, J, Zhou, JJ, Robertson, GR, et al. (2018) Vitamin D in vascular calcification: a double-edged sword? Nutrients 10, 652.CrossRefGoogle ScholarPubMed
Tebben, PJ, Singh, RJ & Kumar, R (2016) Vitamin D-mediated hypercalcemia: mechanisms, diagnosis, and treatment. Endocr Rev 37, 521547.CrossRefGoogle ScholarPubMed
Bischoff-Ferrari, HA (2012) Relevance of vitamin D in muscle health. Rev Endocr Metab Disord 13, 7177.CrossRefGoogle ScholarPubMed
Lehmann, U, Riedel, A, Hirche, F, et al. (2016) Vitamin D3 supplementation: response and predictors of vitamin D3 metabolites – a randomized controlled trial. Clin Nutr 35, 351358.CrossRefGoogle ScholarPubMed
Niedermaier, T, Gredner, T, Kuznia, S, et al. (2022) Vitamin D food fortification in European countries: the underused potential to prevent cancer deaths. Eur J Epidemiol 37, 309320.CrossRefGoogle ScholarPubMed
Reichrath, J, Marz, W, Gruijl, FRDE, et al. (2022) An appraisal to address health consequences of vitamin D deficiency with food fortification and supplements: time to act!. Anticancer Res 42, 50095015.CrossRefGoogle ScholarPubMed
Itkonen, ST, Erkkola, M & Lamberg-Allardt, CJE (2018) Vitamin D fortification of fluid milk products and their contribution to vitamin D intake and vitamin D status in observational studies – a review. Nutrients 10, 1054.CrossRefGoogle ScholarPubMed
Cashman, KD (2020) Vitamin D deficiency: defining, prevalence, causes, and strategies of addressing. Calcif Tissue Int 106, 1429.CrossRefGoogle ScholarPubMed
MacLaughlin, J & Holick, MF (1985) Aging decreases the capacity of human skin to produce vitamin D3. J Clin Invest 76, 15361538.CrossRefGoogle ScholarPubMed
Grant, WB, Boucher, BJ, Al Anouti, F, et al. (2022) Comparing the evidence from observational studies and randomized controlled trials for nonskeletal health effects of vitamin D. Nutrients 14, 3811.CrossRefGoogle ScholarPubMed
Brenner, H, Holleczek, B & Schöttker, B (2020) Vitamin D insufficiency and deficiency and mortality from respiratory diseases in a cohort of older adults: potential for limiting the death toll during and beyond the COVID-19 pandemic? Nutrients 12, 2488.CrossRefGoogle Scholar
Charoenngam, N & Holick, MF (2020) Immunologic effects of vitamin D on human health and disease. Nutrients 12, 2097.CrossRefGoogle ScholarPubMed
Lehmann, U, Hirche, F, Stangl, GI, et al. (2013) Bioavailability of vitamin D(2) and D(3) in healthy volunteers, a randomized placebo-controlled trial. J Clin Endocrinol Metab 98, 43394345.CrossRefGoogle Scholar
Tripkovic, L, Wilson, LR, Hart, K, et al. (2017) Daily supplementation with 15 mg vitamin D2 compared with vitamin D3 to increase wintertime 25-hydroxyvitamin D status. Am J Clin Nutr 106, 481490.CrossRefGoogle ScholarPubMed
Bischoff-Ferrari, HA, Dawson-Hughes, B, Staehelin, HB, et al. (2009) Fall prevention with supplemental and active forms of vitamin D: a meta-analysis of randomised controlled trials. Br Med J 339, b3692.CrossRefGoogle ScholarPubMed