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Unmetabolized folic acid is associated with TNF-α, IL-1β and IL-12 concentrations in a population exposed to mandatory food fortification with folic acid: a cross-sectional population-based study in Sao Paulo, Brazil

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Abstract

Purpose

The study assessed associations between inflammatory markers, as cytokines, adhesion molecules and unmetabolized folic acid (UMFA) among a population exposed to mandatory fortification.

Methods

Data were collected from a cross-sectional population-based survey (n = 302) conducted in São Paulo City, Brazil. UMFA was assayed by a modified affinity-HPLC method with electrochemical detection to measure the different forms of the folate in plasma. We used a commercial test kit to analyze cytokines and adhesion molecules. Multiple logistic regressions were applied to investigate the association between inflammatory markers and UMFA. Multiple models were adjusted for sex, age, self-reported skin color, BMI and smoking status.

Results

The prevalence of detectable UMFA in this population was high (81.2%), with median concentration of 1.67 nmol/L. The odds ratios (95% CIs) for having higher immunological markers levels among individuals in the highest tertile of UMFA were 0.44 (0.24; 0.81) for TNF-α, 0.92 (0.49; 1.75) for CRP, 1.32 (0.70; 2.48) for ICAM, 0.99 (0.54; 1.81) for VCAM, 0.45 (0.25; 0.83) for IL-1β, 0.74 (0.40; 1.38) for IL-6, 1.34 (0.73; 2.44) for IL-8, 0.65 (0.36; 1.18) for IL-10 and 0.49 (0.27; 0.89) for IL-12.

Conclusion

UMFA concentrations were inversely associated with elevated proinflammatory markers (TNF-α, IL-1β and IL-12). These results signalize a link between folate metabolism and the inflammatory status of adults in an apparently folate-replete population.

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References

  1. Global Progress (2016) Food Fortification Initiative. https://ffinetwork.org/global_progress/index.php. Acessed 5 April 2019.

  2. Quinlivan EP, Gregory JF 3rd (2003) Effect of food fortification on folic acid intake in the United States. Am J Clin Nutr 77:221–225

    Article  CAS  Google Scholar 

  3. Crider KS, Devine O, Qi YP, Yeung LF, Sekkarie A, Zaganjor I et al (2019) Systematic review and bayesian meta-analysis of the dose-response relationship between folic acid intake and changes in blood folate concentrations. Nutrients 11(1):E71

    Article  Google Scholar 

  4. Steluti J, Reginaldo C, Selhub J, Paul L, Fisberg RM, Marchioni DM (2018) Presence of circulating folic acid in plasma and its relation with dietary intake, vitamin B complex concentrations and genetic variants. Eur J Nutr. https://doi.org/10.1007/s00394-018-1852-5 (E-pub ahead of print 2 November 2018)

    Article  PubMed  Google Scholar 

  5. Bailey RL, Mills JL, Yetley EA, Gahche JJ, Pfeiffer CM, Dwyer JT et al (2010) Unmetabolized serum folic acid and its relation to folic acid intake from diet and supplements in a nationally representative sample of adults aged> or = 60 y in the United States. Am J Clin Nutr 92:383–389

    Article  CAS  Google Scholar 

  6. Wright AJ, Dainty JR, Finglas PM (2007) Folic acid metabolism in human subjects revisited: potential implications for proposed mandatory folic acid fortification in the UK. Br J Nutr 98:667–675

    Article  CAS  Google Scholar 

  7. Hu J, Wang B, Sahyoun NR (2016) Application of the key events dose-response framework to folate metabolism. Crit Rev Food Sci Nutr 56:1325–1333

    Article  CAS  Google Scholar 

  8. National Toxicology Program (2016) NTP monograph: identifying research needs for assessing safe use of high intakes of folic acid. Research Triangle Park, NC: National Toxicology Program. https://ntp.niehs.nih.gov/ntp/ohat/folicacid/final_monograph_508.pdf.2015. Accessed 4 April 2019.

  9. Scientific Advisory Committee on Nutrition-SACN (2017) Update on folic acid. Public Health England. https://assets.publishing.service.gov.uk/government/uploads/system/uploads/attachment_data/file/637111/SACN_Update_on_folic_acid.pdf. Acessed 2 April 2019.

  10. Field MS, Stover PJ (2018) Safety of folic acid. Ann NY Acad Sci 1414:59–71

    Article  Google Scholar 

  11. Boyles AL, Yetley EA, Thayer KA, Coates PM (2016) Safe use of high intakes of folic acid: research challenges and paths forward. Nutr Rev 74(7):469–474

    Article  Google Scholar 

  12. Samblas M, Martínez JA, Milagro F (2018) Folic acid improves the inflammatory response in lps-activated THP-1 macrophages. Mediators Inflamm 2018:1312626

    Article  Google Scholar 

  13. Cianciulli A, Salvatore R, Porro C, Trotta T, Panaro MA (2016) Folic acid is able to polarize the inflammatory response in lps activated microglia by regulating multiple signaling pathways. Mediators Inflamm 2016:5240127

    Article  Google Scholar 

  14. Junaid MA, Kuizon S, Cardona J, Azher T, Murakami N, Pullarkat RK et al (2011) Folic acid supplementation dysregulates gene expression in lymphoblastoid cells–implications in nutrition. Biochem Biophys Res Commun 412(4):688–692

    Article  CAS  Google Scholar 

  15. Paniz C, Bertinato JF, Lucena MR, De Carli E, Amorim PMDS, Gomes GW et al (2017) A daily dose of 5 mg folic acid for 90 days is associated with increased serum unmetabolized folic acid and reduced natural killer cell cytotoxicity in healthy brazilian adults. J Nutr 147(9):1677–1685

    Article  CAS  Google Scholar 

  16. Fatahi S, Pezeshki M, Mousavi SM, Teymouri A, Rahmani J, Kord Varkaneh H et al (2019) Effects of folic acid supplementation on C-reactive protein: a systematic review and meta-analysis of randomized controlled trials. Nutr Metab Cardiovasc Dis 29(5):432–439

    Article  CAS  Google Scholar 

  17. Turner MD, Nedjai B, Hurst T (1843) Pennington DJ (2014) cytokines and chemokines: at the crossroads of cell signalling and inflammatory disease. Biochim Biophys Acta 11:2563–2582

    Google Scholar 

  18. Instituto Brasileiro de Geografia e Estatística (2005) Pesquisa Nacional por Amostra de Domicílios. https://www.ibge.gov.br/home/estatistica/populacao/trabalhoerendimento/pnad2005/. Acessed 1 April 2019.

  19. Craig CL, Marshall AL, Sjostrom M, Bauman AE, Booth ML, Ainsworth BE et al (2003) International physical activity questionnaire: 12-country reliability and validity. Med Sci Sports Exerc 35:1381e95

    Article  Google Scholar 

  20. Matsudo S, Araujo T, Matsudo V, Andrade D, Andrade E, Oliveira LC et al (2001) Questionário internacional de atividade física (IPAQ): estudo de validade e reprodutibilidade no brasil. Rev Bras Ativ Fís Saúde 6:5–12

    Google Scholar 

  21. World Health Organization (2000) Obesity: preventing and managing the global epidemic. No. 894. World Health Organization, Geneva

    Google Scholar 

  22. Alberti KG, Eckel RH, Grundy SM, Zimmet PZ, Cleeman JI, Donato KA et al (2009) Harmonizing the metabolic syndrome: a joint interim statement of the International Diabetes Federation Task Force on Epidemiology and Prevention; National Heart, Lung, and Blood Institute; American Heart Association; World Heart Federation; International Atherosclerosis Society; and International Association for the Study of Obesity. Circulation 120:1640–1645

    Article  CAS  Google Scholar 

  23. Bliss RM (2004) Researchers produce innovation in dietary recall. Agric Res 52(6):10–12

    Google Scholar 

  24. Blanton CA, Moshfegh AJ, Baer DJ, Kretsch MJ (2006) The USDA automated multiple-pass method accurately estimates group total energy and nutrient intake. J Nutr 136:2594–2599

    Article  CAS  Google Scholar 

  25. Kalmbach R, Paul L, Selhub J (2011) Determination of unmetabolized folic acid in human plasma using affinity HPLC. Am J Clin Nutr 94:S343–S347

    Article  Google Scholar 

  26. Oki E, Norde MN, Carioca AAF, Souza JMP, Castro IA, Marchioni DML et al (2017) Polymorphisms of the TNF-α gene interact with plasma fatty acids on inflammatory biomarker profile: a population-based, cross-sectional study in São Paulo. Brazil. Br J Nutr 117(12):1663–1673

    Article  CAS  Google Scholar 

  27. Chen H, Cohen P, Chen S (2010) How big is a big odds ratio? interpreting the magnitudes of odds ratios in epidemiological studies. Commun Stat Simul Comput 39(4):860–864

    Article  Google Scholar 

  28. Palchetti CZ, Paniz C, de Carli E, Marchioni DM, Colli C, Steluti J et al (2017) Association between serum unmetabolized folic acid concentrations and folic acid from fortified foods. J Am Coll Nutr 36(7):572–578

    Article  CAS  Google Scholar 

  29. Obeid R, Kirsch SH, Dilmann S, Klein C, Eckert R, Geisel J et al (2016) Folic acid causes higher prevalence of detectable unmetabolized folic acid in serum than B-complex: a randomized trial. Eur J Nutr 55(3):1021–1028

    Article  CAS  Google Scholar 

  30. Kalmbach RD, Choumenkovitch SF, Troen AM et al (2008) Circulating folic acid in plasma: relation to folic acid fortification. Am J Clin Nutr 88:763–768

    Article  CAS  Google Scholar 

  31. Obeid R, Herrmann W (2012) The emerging role of unmetabolized folic acid in human diseases: myth or reality? Curr Drug Metab 13:1184–1195

    Article  CAS  Google Scholar 

  32. Pfeiffer CM, Sternberg MR, Fazili Z, Yetley EA, Lacher DA, Bailey RL et al (2015) Unmetabolized folic acid is detected in nearly all serum samples from US children, adolescents, and adults. J Nutr 145:520–531

    Article  CAS  Google Scholar 

  33. Zeng R, Xu CH, Xu YN, Wang YL, Wang M (2015) The effect of folate fortification on folic acid-based homocysteine-lowering intervention and stroke risk: a meta-analysis. Public Health Nutr 18(8):1514–1521

    Article  Google Scholar 

  34. Sarna LK, Wu N, Wang P, Hwang SY, Siow YL, Karmin O (2012) Folic acid supplementation attenuates high fat diet induced hepatic oxidative stress via regulation of NADPH oxidase. Can J Physiol Pharmacol 90(2):155–165

    Article  CAS  Google Scholar 

  35. Solini A, Santini E, Ferrannini E (2006) Effect of short-term folic acid supplementation on insulin sensitivity and inflammatory markers in overweight subjects. Int J Obes (Lond) 30(8):1197–1202

    Article  CAS  Google Scholar 

  36. Lisboa JVC, Ribeiro MR, Luna RCP, Lima RPA, Nascimento RAF et al (2020) Food intervention with folate reduces TNF-α and interleukin levels in overweight and obese women with the MTHFR C677T polymorphism: a randomized trial. Nutrients 12(2):361

    Article  Google Scholar 

  37. Zhao M, Chen YH, Chen X, Dong XT, Zhou J, Wang H et al (2014) Folic acid supplementation during pregnancy protects against lipopolysaccharide-induced neural tube defects in mice. Toxicol Lett 224(2):201–208

    Article  CAS  Google Scholar 

  38. Feng D, Zhou Y, Xia M, Ma J (2011) Folic acid inhibits lipopolysaccharide-induced inflammatory response in RAW264.7 macrophages by suppressing MAPKs and NF-κB activation. Inflamm Res 60(9):817–822

    Article  CAS  Google Scholar 

  39. Kolb AF, Petrie L (2013) Folate deficiency enhances the inflammatory response of macrophages. Mol Immunol 54(2):164–172

    Article  CAS  Google Scholar 

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Acknowledgements

This work was supported by Municipal Health Secretariat of São Paulo; National Counsel of Technological-CNPq; and Scientific Development and São Paulo Research Foundation–FAPESP [Grant Number: #2010/19899–5, #2011/19788–1, #2012/05505–0 and #2015/12196–2].

We thank the participants of the study and researchers of the GEIAS (“Grupo de Estudos Epidemiológicos e Inovação em Alimentação e Saúde”), GAC (“Grupo de Pesquisa de Avaliação do Consumo Alimentar”) and the members (staff, technicians, students and scientists) of the Vitamin Metabolism Laboratory in the Jean Mayer USDA Human Nutrition Research Center on Aging at Tufts University for helping during the biochemical analysis of unmetabolized folic acid. We also thank Prof. Marcelo M. Rogero for analyzing the inflammatory markers.

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Contributions

JS, RMF and DMLM conceived and designed the work. JS, AMM, EC, CZP were responsible for drafting the article and revising it critically for important intellectual content. All authors read and approved the final version of the manuscript.

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Correspondence to Josiane Steluti.

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Conflict of interest

J. Steluti, A. M. Miranda, E. De Carli, C. Z. Palchetti, R. M. Fisberg, D. M. L. Marchioni have no conflict of interest.

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Steluti, J., Miranda, A.M., De Carli, E. et al. Unmetabolized folic acid is associated with TNF-α, IL-1β and IL-12 concentrations in a population exposed to mandatory food fortification with folic acid: a cross-sectional population-based study in Sao Paulo, Brazil. Eur J Nutr 60, 1071–1079 (2021). https://doi.org/10.1007/s00394-020-02307-z

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