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Impact of Maternal Folic Acid Supplementation on Descendants' Kidney in Adulthood

Impacto da suplementação materna com ácido fólico no rim dos descendentes na vida adulta

Abstract

Supplementation with folic acid (FA) during gestation has been recommended by medical society all over the world, but some studies have shown that intake of high folic acid diet may unleash damages to the descendants. Objectives: Describing the effects of maternal supplementation with FA during gestation on offspring's kidney at late life stages. Data Source: It is a systematic review by which were consulted the following databases: Medline, through Pubmed, Lilacs, and SciELO. The research was performed using the keywords “Folic acid”, “Gestation” and “Kidney”. Study Selection: Eight studies were regarded for this systematic review. Data Collection: Only studies that evaluated folic acid consumption during gestation and its effects exclusively on descendants' kidney at several phases of life were regarded. Results: Gestational FA intake did not change the renal volume, glomerular filtration rate and the expression of some essential genes in the kidney of puppies whose dams were supplemented with FA. Maternal consumption of double FA plus selenium diet was effective in preserving antioxidant enzymes activity in the kidney of descendants from mothers exposed to alcohol. FA supplementation decreased some gross anomalies in the puppies caused by teratogenic drug despite of had not been effective in preventing some renal architectural damages. Conclusion: FA supplementation did not cause renal toxicity; it exerted an antioxidant protective effect and mitigated some renal disorders caused by severe aggressions.

Keywords
Folic acid; Gestation; Kidney; Descendant; Adulthood

Resumo

A suplementação com ácido fólico (AF) durante a gestação tem sido recomendada pela sociedade médica em todo o mundo, mas alguns estudos têm mostrado que a ingestão de altas quantidades de ácido fólico na dieta pode desencadear danos aos descendentes. Objetivos: Descrever os efeitos da suplementação materna com AF durante a gestação no rim da prole em fases tardias da vida. Fonte de Dados: Trata-se de uma revisão sistemática realizada através da consulta das seguintes bases de dados: Medline, através da Plataforma Pubmed, Lilacs e Scielo. A pesquisa foi realizada utilizando-se as palavras-chave “Ácido Fólico”, “Gestação” e “Rim”. Seleção dos Estudos: Oito estudos foram considerados para esta revisão sistemática. Coleta de Dados: Foram incluídos estudos que abordaram o consumo de ácido fólico durante a gestação e seus efeitos exclusivamente no rim dos descendentes em diferentes fases da vida. Resultados: O consumo gestacional de AF não alterou o volume renal, a taxa de filtração glomerular e a expressão de alguns genes essenciais no rim dos filhotes de mães suplementadas com AF. A associação de AF e selênio na dieta materna foi eficaz na preservação da atividade de enzimas antioxidantes no rim da prole de mães expostas ao álcool. O consumo de AF diminuiu algumas anomalias importantes nos filhotes causadas por drogas teratogênicas, apesar de não ter sido eficiente na prevenção de alguns danos a arquitetura renal. Conclusão: A suplementação com AF não causou toxicicdade renal, exerceu efeito protetor antioxidante e mitigou algumas desordens renais causadas por agressões severas.

Palavras-chave
Ácido fólico; Gestação; Rim; Descendentes; Vida adulta

Introduction

Folic Acid Characterization

Folic acid (AF) is a water-soluble B (B9) vitamin, poorly stored in the body. The term “folic” comes from the Latin folium, leaf, due to its presence in leafy green vegetables such as spinach, cabbage, and broccoli besides viscera such as liver and kidney, milk, and egg. It is found in more than 90% as polyglutamates, which must be converted into monoglutamate before being absorbed.11 Vannucchi H, Jordão Júnior AA. Vitaminas hidrossolúveis. In: Dutra-de-Oliveira JE, Marchini JS. Ciências nutricionais. São Paulo: Sarvier; 1998:191–207 FA is synthesized by microorganisms and higher plants, but not by mammals for which it is an essential nutrient needing to be ingested through food.22 Green T, Newton R, Bourn D. Estimated folic acid intakes from simulated fortification of the New Zealand food supply. N Z Med J. 2003;116(1168):U294,33 Merrell BJ, McMurry JP. Folic acid. In: StatPearls [Internet]. Treasure Island: StatPearls; 2020 [cited 2022 Mar 12]. Available from: https://www.ncbi.nlm.nih.gov/books/NBK554487/
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It can be also found in monoglutamate as a drug supplement, being quickly absorbed.44 Uehara SK, Rosa G. Associação da deficiência de ácido fólico com alterações patológicas e estratégias para sua prevenção: uma visão crítica. Rev Nutr. 2010;23(05):881–894 It has a pivotal role in purine and pyrimidine biosynthesis and consequently, in DNA and RNA formation.55 Fakouri A, Asghari A, Akbari G, Mortazavi P. Effects of folic acid administration on testicular ischemia/reperfusion injury in rats. Acta Cir Bras. 2017;32(09):755–766. Doi: 10.1590/s0102865020170090000008
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It is also essential to specific metabolic reactions in the cell environment besides the growth and functioning of the organism.11 Vannucchi H, Jordão Júnior AA. Vitaminas hidrossolúveis. In: Dutra-de-Oliveira JE, Marchini JS. Ciências nutricionais. São Paulo: Sarvier; 1998:191–207 FA works as coenzymes in the transport of simple carbon fragments and in the metabolism of amino acids.66 Mahan LK, Escott-Stump S, Raymond JL. Krause alimentos, nutrição e dietoterapia. 9a ed. São Paulo: Roca; 1998

Absorption and Transport of Folic Acid

Polyglutamates of folates obtained from the diet are hydrolyzed into monoglutamate in the small intestine and absorbed by the intestinal mucosa. The enzyme named gamma-glutamyl hydrolase (γ-GH or glutamate carboxypeptidase II) is responsible for the hydrolysis of folylpolyglutamate and it is present on the villi of the small intestine epithelial cells characterized by brush shape. After hydrolysis, folate crosses basolateral membrane of intestinal mucosa cells, which contain their specific transporters, being released into the portal circulation.77 McGuire JJ, Coward JK. Pteroylpolyglutamates: biosynthesis, degradation, and function. In: Blakley RL, Benkovic SJ, editors. Folates and pterins, chemistry and biochemistry of folates. New York: Wiley-Interscience; 1984:135–190 FA is absorbed mainly in jejunum by passive transport, following a concentration gradient and by active transport when folate binds to reduced folate transporter 1 and 2 (RFT-1 and RFT-2) and folate binding protein (FBP). It can also be absorbed in the ileum just by passive transport. Folate is absorbed in a neutral pH environment (pH 7,4), with such a process being facilitated by the neutralization of gastric content by the alkaline pancreatic juice. The main form of circulating endogenous folate is 5-methyltetrahydrofolate, which is transported through plasm by low-affinity bindings with specific proteins, such as albumin and a soluble form of folate receptors (FR).88 Baluz K, Carmo MG, Rosas G. O papel do ácido fólico na prevenção e na terapêutica oncológica: revisão. Rev Bras Cancerol. 2002;48 (04):597–60 However, its concentrations are higher in red cells than in plasm due to its binding to hemoglobin.99 Lin Y, Dueker SR, Follett JR, et al. Quantitation of in vivo human folate metabolism. Am J Clin Nutr. 2004;80(03):680–691. Doi: 10.1093/ajcn/80.3.680
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Liver is able to absorb much of the folate from the portal circulation. The hepatic cells metabolize it into polyglutamate derivatives, retaining or releasing it in the blood or bile.1010 Whitehead VM. Pharmacokinetics and physiological disposition of folate and its derivatives. In: Blakley RL, Whitehead VM, eds. Folates and pterins, chemistry and biochemistry of folates. New York: John Wiley & Sons; 1986:177–205,1111 Horne DW, Reed KA, Hoefs J, Said HM. 5-Methyltetrahydrofolate transport in basolateral membrane vesicles from human liver. Am J Clin Nutr. 1993;58(01):80–84. Doi: 10.1093/ajcn/58.1.80
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The folate excretion occurs mainly through bile in an approximate concentration of 100μg daily,1010 Whitehead VM. Pharmacokinetics and physiological disposition of folate and its derivatives. In: Blakley RL, Whitehead VM, eds. Folates and pterins, chemistry and biochemistry of folates. New York: John Wiley & Sons; 1986:177–205,1212 Suh JR, Herbig AK, Stover PJ. New perspectives on folate catabolism. Annu Rev Nutr. 2001;21:255–282. Doi: 10.1146/annurev. nutr.21.1.255
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but it is reabsorbed in the small intestine. FA is filtered in the renal glomerulus and reabsorbed in the proximal contorted tubule. No FA is found in the urine, only its cleavage products.1313 Williams WM, Huang KC. Renal tubular transport of folic acid and methotrexate in the monkey. Am J Physiol. 1982;242(05):F484–F490. Doi: 10.1152/ajprenal.1982.242.5.F484
https://doi.org/10.1152/ajprenal.1982.24...

Gestation and Folic Acid

FA or B9 vitamin is spontaneously ingested in proper amounts by food in balanced diets. However, its deficiency becomes greater in women of childbearing age who intend to become pregnant, a period in which it is common to prescribe a drug supplement.1414 Ministério da Saúde. Secretaria de Atenção à Saúde. Departamento de Atenção Básica. Atenção ao pré-natal de baixo risco [Internet]. Brasília, DF: Editora do Ministério da Saúde; 2012 [cited 2022 Mar 20]. (Caderno de Atenção Básica; no. 32). Available from: http://bvsms.saude.gov.br/bvs/publicacoes/cadernos_atencao_basica_32_prenatal.pdf
http://bvsms.saude.gov.br/bvs/publicacoe...
,1515 Moran VH. A systematic review of dietary assessments of pregnant adolescents in industrialised countries. Br J Nutr. 2007;97 (03):411–425. Doi: 10.1017/S0007114507381373
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During gestation, the amount of FA ingested is insufficient to supply the daily needs that are increased in the pregnant.1616 Hediger ML, Scholl TO, Khoo CS, Fischer RL. Diet, weight gain, and circulating micro-nutrients: evidence for nutritional depletion following adolescent pregnancy. J Adolesc Health. 1992;13(01): 46 Such vitamin has a fundamental role on cell proliferation, interfering in erythrocyte increasing, uterus enlargement, and development of both placenta and fetus,1717 McDonald SD, Ferguson S, Tam L, Lougheed J, Walker MC. The prevention of congenital anomalies with periconceptional folic acid supplementation. J Obstet Gynaecol Can. 2003;25(02): 115–121. Doi: 10.1016/s1701-2163(16)30207-9
https://doi.org/10.1016/s1701-2163(16)30...
becoming indispensable during pregnancy. According to Rangel-Rivera and Osma-Zambrano,1818 Rangel-Rivera DA, Osma-Zambrano SE. Consumo de ácido fólico en el embarazo y reducción del riesgo de trastornos del espectro autista. Med UIS.. 2015;28(03):327–336. Doi: 10.18273/revmed. v28n3-2015007
https://doi.org/10.18273/revmed.v28n3-20...
FA is essential for suitable formation and maintenance of several structures of the central nervous system, reducing the risk of severe language and attention disorders, schizophrenia, pre-eclampsia, low birth weight and premature birth. Meroanencephaly and spina bifida are the most common severe congenital malformations and both stem from defects of neural tube closure, can be prevented by FA intake in early gestation and immediately before such period.1919 Wald NJ, Morris JK, Blakemore C. Public health failure in the prevention of neural tube defects: time to abandon the tolerable upper intake level of folate. Public Health Rev. 2018;39:2. Doi: 10.1186/s40985-018-0079-6
https://doi.org/10.1186/s40985-018-0079-...
Both periconceptional supplementation and during the first trimester of pregnancy has reduced the risk of recurrence of such defects in about 50 to 70%.2020 Santos LM, Pereira MZ. The effect of folic acid fortification on the reduction of neural tube defects. Cad Saude Publica. 2007;23(01): 17–24. Doi: 10.1590/S0102-311X2007000100003
https://doi.org/10.1590/S0102-311X200700...
Due to this fact, the supplementation of pregnant with such nutrient has been recommended by medical societies all over the world both to prevent the first occurrence and the recurrence of those defects.2121 Valentin M, Coste Mazeau P, Zerah M, Ceccaldi PF, Benachi A, Luton D. Acid folic and pregnancy: A mandatory supplementation. Ann Endocrinol (Paris). 2018;79(02):91–94. Doi: 10.1016/j. ando.2017.10.001
https://doi.org/10.1016/j.ando.2017.10.0...
In China, for example, there was a significant decline in the number of congenital hydrocephalus cases after 2009, when it was applied a massive program of FA supplementation during gestation.2222 Liu J, Jin L, Li Z, et al. Prevalence and trend of isolated and complicated congenital hydrocephalus and preventive effect of folic acid in northern China, 2005-2015. Metab Brain Dis. 2018;33 (03):837–842. Doi: 10.1007/s11011-017-0172-4
https://doi.org/10.1007/s11011-017-0172-...
In Bangladesh also its prenatal intake decreased significantly the probability of myelomeningocele occurrence.2323 Kancherla V, Ibne Hasan MOS, Hamid R, et al. Prenatal folic acid use associated with decreased risk of myelomeningocele: A casecontrol study offers further support for folic acid fortification in Bangladesh. PLoS One. 2017;12(11):e0188726. Doi: 10.1371/ journal.pone.0188726
https://doi.org/10.1371/journal.pone.018...
In Brazil, in 2002 the Ministry of Health regarded the folic acid as an essential medicine during prenatal care, recommending 400 µg (0,4mg) as daily dose 30 days before conception until the first trimester of gestation as a way of to prevent the occurrence of neural tube defects and maternal anemia.88 Baluz K, Carmo MG, Rosas G. O papel do ácido fólico na prevenção e na terapêutica oncológica: revisão. Rev Bras Cancerol. 2002;48 (04):597–60 This institution also recommends a dose of 5mg per day of FA for women who have congenital malformations history.1414 Ministério da Saúde. Secretaria de Atenção à Saúde. Departamento de Atenção Básica. Atenção ao pré-natal de baixo risco [Internet]. Brasília, DF: Editora do Ministério da Saúde; 2012 [cited 2022 Mar 20]. (Caderno de Atenção Básica; no. 32). Available from: http://bvsms.saude.gov.br/bvs/publicacoes/cadernos_atencao_basica_32_prenatal.pdf
http://bvsms.saude.gov.br/bvs/publicacoe...
Nowadays, some studies have evaluated the impact of FA maternal intake besides those related to nervous system disorder prevention. Previously our group reported by systematic review that such supplementation during gestation exerted protective effects on liver of offspring in adulthood,2424 Brasil FB, Amarante LH, Oliveira MR. Maternal folic acid consumption during gestation and its long-term effects on offspring’s liver: a systematic review. Rev Bras Saúde Mater Infant. 2017;17(01): 17–25. Doi: 10.1590/1806-93042017000100002
https://doi.org/10.1590/1806-93042017000...
avoiding deleterious epigenetic changes and improving the cell defenses, especially in hostile maternal conditions, such as, alcohol exposition and deprivation of protein. Several studies agree about the importance of FA intake during gestation as a way of to prevent congenital malformations, but, some of them have questioned what would be the ideal doses and proposed that the ingestion of high quantities could trigger of some damages to descendants. Recent researches suggest that selective excessive intake of a type of vitamin can change negatively the metabolic activities and it is also applied to this supplementation.2525 Wiens D, DeSoto MC. Is high folic acid intake a risk factor for autism? - A review. Brain Sci. 2017;7(11):149. Doi: 10.3390/ brainsci7110149
https://doi.org/10.3390/brainsci7110149...
Morakinyo et al.,2626 Morakinyo AO, Samuel TA, Awobajo FO, Oludare GO, Mofolorunso A. High-dose perinatal folic-acid supplementation alters insulin sensitivity in sprague-dawley rats and diminishes the expression of adiponectin. J Diet Suppl. 2019;16(01):14–26. Doi: 10.1080/ 19390211.2018.1426076
https://doi.org/10.1080/19390211.2018.14...
for instance, demonstrated that high doses of FA during pregnancy or lactation decreased insulin sensitivity and adiponectin expression in offspring, predisposing to dyslipidemia and changes in glucose metabolism. Barua et al.2727 Barua S, Kuizon S, Brown WT, Junaid MA. DNA methylation profiling at single-base resolution reveals gestational folic acid supplementation influences the epigenome of mouse offspring cerebellum. Front Neurosci. 2016;10:168. Doi: 10.3389/ fnins.2016.00168
https://doi.org/10.3389/fnins.2016.00168...
also report that FA high doses changes genomic function and affect the offspring's behaviour in mice. Leeming and Lucock2828 Leeming RJ, Lucock M. Autism: Is there a folate connection? J Inherit Metab Dis. 2009;32(03):400–402. Doi: 10.1007/s10545009-1093-0
https://doi.org/10.1007/s10545-009-1093-...
ponder that clinical and experimental studies are based on the fact such vitamin can prevent some malformations, but they do not consider the long-term effects, which can be deleterious. These authors suggest that high-dose supplementation can predispose to autism disorder and be associated to the increase in the number of children with such pathology. Other works corroborate it by reporting that ingestion throughout pregnancy may be associated with negative results in the development of the offspring's nervous system.2929 Raghavan R, Fallin MD, Wang X. Maternal plasma folate, vitamin B12 levels and multivitamin supplementation during pregnancy and risk of autism spectrum disorder in the Boston Birth Cohort. FASEB J. 2016;30(S1):151.6,3030 Valera-Gran D, Navarrete-Muñoz EM, Garcia de la Hera M, et al; INMA Project. Effect of maternal high dosages of folic acid supplements on neurocognitive development in children at 4-5 y of age: the prospective birth cohort Infancia y Medio Ambiente (INMA) study. Am J Clin Nutr. 2017;106(03):878–887. Doi: 10.3945/ajcn.117.152769
https://doi.org/10.3945/ajcn.117.152769...

Fetal Programming

Gestation is featured by physical and psychological changes, as result of body adaptations,3131 Costa MC, Bezerra Filho JG, Andrade Bezerra MG, Veríssimo de Oliveira MI, Carvalho de Oliveira RM, De Vasconcelos Silva AR. Gestação de risco: percepção e sentimentos das gestantes com amniorrexe prematura. Enferm Glob. 2010;9(03):1–11. Doi: 10.6018/eglobal.9.3.110841
https://doi.org/10.6018/eglobal.9.3.1108...
becoming the nutritional needs increased during such period.1616 Hediger ML, Scholl TO, Khoo CS, Fischer RL. Diet, weight gain, and circulating micro-nutrients: evidence for nutritional depletion following adolescent pregnancy. J Adolesc Health. 1992;13(01): 46 Maternal nutritional state is pivotal to determine both metabolic and hormonal profile of descendants and stablish conditions which can remain throughout life. Waterland e Garza3232 Waterland RA, Garza C. Potential mechanisms of metabolic imprinting that lead to chronic disease. Am J Clin Nutr. 1999;69 (02):179–197. Doi: 10.1093/ajcn/69.2.179
https://doi.org/10.1093/ajcn/69.2.179...
defined this relationship as fetal programming, expression which associates nutritional changes in early life to diseases in adulthood, such as diabetes, obesity and arterial hypertension. Maternal nutrition is the main factor to determine intrauterine environment, due to its potential to change the expression of fetal genome and lead to development adaptations. Thus, the suitable nutrition may reduce the risks of developing chronic diseases in late life.3333 Wu G, Bazer FW, Cudd TA, Meininger CJ, Spencer TE. Maternal nutrition and fetal development. J Nutr. 2004;134(09): 2169–2172. Doi: 10.1093/jn/134.9.2169
https://doi.org/10.1093/jn/134.9.2169...
Several experimental models have been set up in order to evaluate the impact of maternal feeding on offspring development. Protein restriction, for example, is a widely used one and has been harmful to descendants inducing decrease in the number of nephrons in both adult male3434 Woods LL, Ingelfinger JR, Nyengaard JR, Rasch R. Maternal protein restriction suppresses the newborn renin-angiotensin system and programs adult hypertension in rats. Pediatr Res. 2001;49 (04):460–467. Doi: 10.1203/00006450-200104000-00005
https://doi.org/10.1203/00006450-2001040...
and female rats3535 Langley-Evans SC, Welham SJ, Jackson AA. Fetal exposure to a maternal low protein diet impairs nephrogenesis and promotes hypertension in the rat. Life Sci. 1999;64(11):965–974. Doi: 10.1016/s0024-3205(99)00022-3
https://doi.org/10.1016/s0024-3205(99)00...
when it occurs during entire gestation. Exposure to prenatal undernutrition in human beings is also associated with premature brain aging in young adults.3636 Franke K, Gaser C, Roseboom TJ, Schwab M, de Rooij SR. Premature brain aging in humans exposed to maternal nutrient restriction during early gestation. Neuroimage. 2018;173:460–471. Doi: 10.1016/j.neuroimage.2017.10.047
https://doi.org/10.1016/j.neuroimage.201...
In rats the protein shortage during gestation and lactation triggered some changes in male and female offspring's behaviour in a period equivalent to adolescence. According to the authors, both stereotyped behaviour and decreased social interaction observed can be associated with autism spectrum disorder.3737 Batista TH, Giusti-Paiva A, Vilela FC. Maternal protein malnutrition induces autism-like symptoms in rat offspring. Nutr Neurosci. 2019;22(09):655–663. Doi: 10.1080/1028415X.2018. 1427660
https://doi.org/10.1080/1028415X.2018.14...
Inappropriate amounts of micronutrients in the maternal diet can also cause some disorders in kidney development, such as both reduction in offspring's number of nephrons whose dams were submitted to vitamin A deprivatio3838 Lelièvre-Pégorier M, Vilar J, Ferrier ML, et al. Mild vitamin A deficiency leads to inborn nephron deficit in the rat. Kidney Int. 1998;54(05):1455–1462. Doi: 10.1046/j.1523-1755.1998.00151.x
https://doi.org/10.1046/j.1523-1755.1998...
and renal glomeruli in descendants from dams that received iron deficient diet.3939 Lisle SJ, Lewis RM, Petry CJ, Ozanne SE, Hales CN, Forhead AJ. Effect of maternal iron restriction during pregnancy on renal morphology in the adult rat offspring. Br J Nutr. 2003;90(01):33–39. Doi: 10.1079/bjn2003881
https://doi.org/10.1079/bjn2003881...
Regarding FA, some works have demonstrated that its deficiency during pregnancy changes cell division, which is more meaning in tissues with a high proliferation rate.4040 Bunduki V, Martinelli S, Cabar FR, et al. Maternal and fetal serum and red blood cell folate levels in pregnancies complicated by neural tube defects. Rev Bras Ginecol Obstet. 1998;20(06): 335–341. Doi: 10.1590/S0100-72031998000600006 Portuguese.
https://doi.org/10.1590/S0100-7203199800...
Cell multiplications, as well as rapid growth, which are central aspects of fetal development require a suitable folate supply. Meher et al.4141 Meher A, Joshi A, Joshi S. Differential regulation of hepatic transcription factors in the Wistar rat offspring born to dams fed folic acid, vitamin B12 deficient diets and supplemented with omega-3 fatty acids. PLoS One. 2014;9(02):e90209. Doi: 10.1371/ journal.pone.0090209
https://doi.org/10.1371/journal.pone.009...
found reduction of liver absolute weight in offspring from dams fed on low quantities of it during gestation and lactation, besides changed hepatic transcription factors expression. The hepatic protein levels involved with metabolism and neutralization of toxic products were also altered in male offspring from rats submitted to similar restriction during gestation.4242 Maloney CA, Hay SM, Reid MD, et al. A methyl-deficient diet fed to rats during the preand peri-conception periods of development modifies the hepatic proteome in the adult offspring. Genes Nutr. 2013;8(02):181–190. Doi: 10.1007/s12263-012-0314-6
https://doi.org/10.1007/s12263-012-0314-...
Those changes remained until both six months and one year old, reinforcing the fetal programming concept. Due to some studies' question about the ideal quantity of FA that should be consumed during gestational period, this work intended to gather different experimental models and doses as well as its absence in order to report the impact in these situations. Besides it, few works have evaluated the effects of such supplementation in the kidney at late life. Because of its important role on homeostasis, this work goals to evaluate the supplementation effects exclusively during gestation in the offspring's kidney by current literature.

Methods

It was performed research in the following databases: MedLine (Medical Literature Analysis and Retrieval System Online), through Pubmed, LILACS (Literatura Latino- Americana e do Caribe em Ciências da Saúde) and SciELO (Scientific Electronic Library Online). It was carried out through advanced research with the descriptors together: “folic acid”, “gestation” and “kidney” in English and Portuguese. In this way, we obtained 107 articles in the PubMed platform, two in LILACS, and none in Scielo. The word “offspring” was not included to enable a wide and comprehensive research. After preliminary reading, the articles that met the inclusion criteria were regarded: (1) studies with rats, mice, and human beings (2) studies that approached the effects of maternal folic acid consumption during gestation and lactation, and (3) studies that evaluated the offspring's kidney in several phases of life. The exclusion criteria were: (1) studies that performed FA supplementation in any other period than pregnancy and (2) articles that evaluated the effect on the mother.

Results

The works regarded used different experimental models and evaluated several parameters. Thus, the results were separated into categories according to the evaluated criteria.

Gestational Supplementation in Normal Conditions

Effects on Glomerular Filtration Rate

Lee et al.4343 Lee YQ, Collins CE, Gordon A, Rae KM, Pringle KG. The relationship between maternal nutrition during pregnancy and offspring kidney structure and function in humans: a systematic review. Nutrients. 2018;10(02):E241. Doi: 10.3390/nu10020241
https://doi.org/10.3390/nu10020241...
followed children whose mothers received micronutrient supplementation during pregnancy and evaluated the long-term effects. These authors showed that maternal supplementation during early gestation was associated with a reduction of diastolic pressure in childhood despite the systolic pressure not being altered in those children. Also, the renal volume and glomerular filtration rate were not changed by such supplementation. Children whose mothers received high doses of iron (60mg) and folate (400μg) during gestation presented higher glomerular filtration rate when compared to offspring from supplemented mothers with half the quantity of iron. Lee et al.4343 Lee YQ, Collins CE, Gordon A, Rae KM, Pringle KG. The relationship between maternal nutrition during pregnancy and offspring kidney structure and function in humans: a systematic review. Nutrients. 2018;10(02):E241. Doi: 10.3390/nu10020241
https://doi.org/10.3390/nu10020241...
performed a systematic review in order to comprehend the relationship between maternal nutrition and renal development exclusively in human beings, evaluating its structure and function in some nutritional situations. Among the works cited in such study, one of them reported a significantly lower risk to develop microalbuminuria in children six to eight years old whose mothers consumed FA during pregnancy.4444 Stewart CP, Christian P, Schulze KJ, Leclerq SC, West KP Jr, Khatry SK. Antenatal micronutrient supplementation reduces metabolic syndrome in 6- to 8-year-old children in rural Nepal. J Nutr. 2009; 139(08):1575–1581. Doi: 10.3945/jn.109.106666
https://doi.org/10.3945/jn.109.106666...
Another study did not show any relation between such supplementation and change in the kidney of descendants at six years old. However, it suggested that higher maternal serum folate concentrations at early gestation were positively correlated with an increase in renal volume in childhood, but not with albuminuria risk.4545 Miliku K, Mesu A, Franco OH, Hofman A, Steegers EAP, Jaddoe VWV. Maternal and fetal folate, vitamin B12, and homocysteine concentrations and childhood kidney outcomes. Am J Kidney Dis. 2017;69(04):521–530. Doi: 10.1053/j.ajkd.2016.11.014
https://doi.org/10.1053/j.ajkd.2016.11.0...

Molecular Level Effect

One of the studies regarded in this manuscript analyzed both FA supplementation in specific organs and gestational period, investigating its impact at the first, second and third weeks singly or throughout pregnancy.4646 Ly A, Ishiguro L, Kim D, et al. Maternal folic acid supplementation modulates DNA methylation and gene expression in the rat offspring in a gestation period-dependent and organ-specific manner. J Nutr Biochem. 2016;33:103–110. Doi: 10.1016/j.jnutbio.2016.03.018
https://doi.org/10.1016/j.jnutbio.2016.0...
Folate plasmatic levels were higher in 30 to 42% in the pups from supplemented dams, meanwhile, its concentrations in the kidney and colon were not affected because of maternal intake. The intervention time did not cause difference about such parameters. Global DNA methylation was also observed in different organs. Relation to kidney, liver, and colon, was not observed any change in descendants whose dams received FA, regardless of supplementation time. The gene expression levels of essential genes for fetal development, such as α estrogen receptor (Er-α), glucocorticoid receptor (Gr), peroxisome proliferator-activated receptor alfa (Ppar-α), insulin-like growth factor 2 (Igf2) and peroxisome proliferator-activated receptor gamma (Ppar-γ) were not changed in the kidney of puppies from dams FA supplemented at any time of gestation. Similar results have been found in the brain and colon of those animals. Among the evaluated organs, only in the liver the expression of Er-α, Gr, Ppar-α genes was decreased in 15 to 25% in puppies whose mothers received FA in late gestation or throughout it. Based on results, the authors comment that the effects depend on the evaluated organ and the period in which it is applied.

Gestational Supplementation in Hostile Conditions

Maternal Exposure to Alcohol

This study also selected articles that reported the impact of FA maternal intake associated with conditions which can predispose the descendants to diseases in long-term, such as, alcohol. Ojeda et al.4747 Ojeda ML, Nogales F, Murillo ML, Carreras O. Selenium or selenium plus folic acid-supplemented diets ameliorate renal oxidation in ethanol-exposed pups. Alcohol Clin Exp Res. 2012;36(11): 1863–1872. Doi: 10.1111/j.1530-0277.2012.01788.x
https://doi.org/10.1111/j.1530-0277.2012...
have investigated if such vitamin could reverse the damages from oxidative stress due to alcohol consumption during pregnancy and lactation in the offspring. They found out that the addition of FA and selenium (Se) on maternal diet mitigates the puppies' growth retardation, which is one of the harmful effects of alcohol exposure. The supplementation did not exert any effect on kidney relative weight; however, it prevented the reduction of protein content in renal tissues, found in those animals whose mothers consumed ethanol. The same puppies also had a decrease by 50% in creatinine clearance not improved by FA and Se. On the other hand, the supplemented diets were effective to preserve glutathione reductase enzyme activity in the kidney, which was decreased in descendants of dams exposed to alcohol. The double supplementation increased the superoxide dismutase (SOD) activity only in control animals and not in those whose mothers consumed alcohol. Catalase activity was preserved in the litter of dams that received Se and FA as well as. Another work published by the same authors reported that maternal alcohol intake during lactation caused reduction on litter body growth despite of did not alter the weight of any specific organ. Such disorder was reversed by double supplementation. Ethanol exposure also depleted Se in some organs as kidney, liver and brain, meanwhile the diet recovered this pattern.4848 Ojeda ML, Jotty K, Nogales F, Murillo ML, Carreras O. Selenium or selenium plus folic acid intake improves the detrimental effects of ethanol on pups’ selenium balance. Food Chem Toxicol. 2010;48 (12):3486–3491

Maternal Protein Restriction

Król et al.4949 Król E, Krejpcio Z, Chmurzynska A. Folic acid and protein content in maternal diet and postnatal high-fat feeding affect the tissue levels of iron, zinc, and copper in the rat. Biol Trace Elem Res. 2011;144(1-3):885–893. Doi: 10.1007/s12011-011-9048-3
https://doi.org/10.1007/s12011-011-9048-...
have evaluate if FA combined with normal and hypoprotein diets during gestation could reverse the harmful effects from protein deprivation about minerals content in different tissues. Renal copper (Cu) content was reduced by maternal FA intake, but such levels were significantly lower in the offspring whose mothers received the vitamin associated with hypoprotein diet. Neither the protein-deficient nor FA supplemented diet affected iron (Fe) levels in the descendants' kidney. Maternal protein-defficient diet enriched by high quantity of FA (5mg) also was associated with higher renal levels of zinc (Zn). The gender was an important factor to determine Cu, Zn and Fe contents in the liver and kidneys, with female offspring having higher levels of such minerals than males.

Maternal Exposure to Other Drugs

Some studies have questioned if FA is able to prevent the disorders induced by genotoxic and teratogenic drugs during pregnancy. El-Ashmawy and Bayad5050 El-Ashmawy IM, Bayad AE. Folic acid and grape seed extract prevent azathioprine-induced fetal malformations and renal toxicity in rats. Phytother Res. 2016;30(12):2027–2035. Doi: 10.1002/ptr.5709
https://doi.org/10.1002/ptr.5709...
administered this vitamin together with azathioprine (AZA) between sixth and fifth days of gestation in rats and observed changes that happened to dams and fetuses. Despite not being the object of our study, some findings should be highlighted. Maternal weight gain, implantation sites and number of fetuses were close to control group. On the other hand, the dams which received only AZA presented higher number of dead fetuses and the living ones had marked reduction in body weight and growth, besides gross visceral and skeletal anomalies. The groups treated with FA displayed similar results to the control group, with significant decrease of those anomalies. The administration of FA and AZA during four weeks in a successive experiment became urea and creatinine serum levels close to the control group (►Chart 1). Otherwise, FA was not effective in reducing renal malondialdehyde (MDA) levels in those animals and preventing the architectural damages in the kidney, such as degeneration and tubular necrosis, swollen glomeruli, and infiltration of lymphocytes triggered by AZA.5050 El-Ashmawy IM, Bayad AE. Folic acid and grape seed extract prevent azathioprine-induced fetal malformations and renal toxicity in rats. Phytother Res. 2016;30(12):2027–2035. Doi: 10.1002/ptr.5709
https://doi.org/10.1002/ptr.5709...

51 Kim YI. Folate and carcinogenesis: evidence, mechanisms, and implications. J Nutr Biochem. 1999;10(02):66–88. Doi: 10.1016/ s0955-2863(98)00074-6
https://doi.org/10.1016/s0955-2863(98)00...

52 Bergman D, Halje M, Nordin M, Engström W. Insulin-like growth factor 2 in development and disease: a mini-review. Gerontology. 2013;59(03):240–249. Doi: 10.1159/000343995
https://doi.org/10.1159/000343995...

53 Bondesson M, Hao R, Lin CY, Williams C, Gustafsson JA. Estrogen receptor signaling during vertebrate development. Biochim Biophys Acta. 2015;1849(02):142–151. Doi: 10.1016/j.bbagrm.2014. 06.005
https://doi.org/10.1016/j.bbagrm.2014.06...

54 Grygiel-Górniak B. Peroxisome proliferator-activated receptors and their ligands: nutritional and clinical implications–a review. Nutr J. 2014;13:17. Doi: 10.1186/1475-2891-13-17
https://doi.org/10.1186/1475-2891-13-17...

55 Michalik L, Auwerx J, Berger JP, et al. International Union of Pharmacology. LXI. Peroxisome proliferator-activated receptors. Pharmacol Rev. 2006;58(04):726–741. Doi: 10.1124/pr.58.4.5
https://doi.org/10.1124/pr.58.4.5...

56 Feng S, Jacobsen SE, Reik W. Epigenetic reprogramming in plant and animal development. Science. 2010;330(6004):622–627. Doi: 10.1126/science.1190614
https://doi.org/10.1126/science.1190614...

57 Kulis M, Esteller M. DNA methylation and cancer. Adv Genet. 2010;70:27–56. Doi: 10.1016/B978-0-12-380866-0.60002-2
https://doi.org/10.1016/B978-0-12-380866...

58 Ojeda ML, Nogales F, Jotty K, Barrero MJ, Murillo ML, Carreras O. Dietary selenium plus folic acid as an antioxidant therapy for ethanol-exposed pups. Birth Defects Res B Dev Reprod Toxicol. 2009;86(06):490–495. Doi: 10.1002/bdrb.20211
https://doi.org/10.1002/bdrb.20211...

59 Lee S, Murthy N. Targeted delivery of catalase and superoxide dismutase to macrophages using folate. Biochem Biophys Res Commun. 2007;360(01):275–279. Doi: 10.1016/j.bbrc.2007.06. 054
https://doi.org/10.1016/j.bbrc.2007.06.0...

60 Iborra A, Palacio JR, Martínez P. Oxidative stress and autoimmune response in the infertile woman. Chem Immunol Allergy. 2005; 88:150–162. Doi: 10.1159/000087832
https://doi.org/10.1159/000087832...

61 Rodrigo R, Rivera G. Renal damage mediated by oxidative stress: a hypothesis of protective effects of red wine. Free Radic Biol Med. 2002;33(03):409–422. Doi: 10.1016/s0891-5849(02)00908-5
https://doi.org/10.1016/s0891-5849(02)00...

62 Dennery PA. Oxidative stress in development: nature or nurture? Free Radic Biol Med. 2010;49(07):1147–1151. Doi: 10.1016/j. freeradbiomed.2010.07.011
https://doi.org/10.1016/j.freeradbiomed....

63 Araujo Guedes RC, de Alburquerque Paiva AM, Amâncio-dosSantos A, Vieira-Filho LD, Oliveira da Paixão AD. On some physiological aspects of ethanol repercussion on neural and cardiorenal functions. Cent Nerv Syst Agents Med Chem. 2009;9(04): 277–288. Doi: 10.2174/187152409789630433
https://doi.org/10.2174/1871524097896304...
-6464 Hawkesworth S, Wagatsuma Y, Kahn AI, et al. Combined food and micronutrient supplements during pregnancy have limited impact on child blood pressure and kidney function in rural Bangladesh. J Nutr. 2013;143(05):728–734. Doi: 10.3945/ jn.112.168518
https://doi.org/10.3945/jn.112.168518...

Chart 1
General characteristics of the included studies

Discussion

The literature indicates that gestation is a critical period to determine the concept's future metabolic status and many factors can affect such development. In this review, we have found that FA maternal supplementation was not capable to change the DNA global methylation in the kidney, which seems to be beneficial, even though this result has not been observed in all organs. The supplementation performed throughout pregnancy is associated with such alteration in the brain and liver, with the first one being more susceptible. These organ-specific effects are probably related to the differences in both metabolism and folate demand in each of them.5151 Kim YI. Folate and carcinogenesis: evidence, mechanisms, and implications. J Nutr Biochem. 1999;10(02):66–88. Doi: 10.1016/ s0955-2863(98)00074-6
https://doi.org/10.1016/s0955-2863(98)00...
The literature reports that changes in DNA methylation due to FA maternal intake vary according to the tissue, specific genes, interaction with other vitamins, among others.

Gestational supplementation did not change the expression of some genes, such as Igf2, Ppar-α e Ppar-γ in the kidney. Igf2 promotes fetal growth,5252 Bergman D, Halje M, Nordin M, Engström W. Insulin-like growth factor 2 in development and disease: a mini-review. Gerontology. 2013;59(03):240–249. Doi: 10.1159/000343995
https://doi.org/10.1159/000343995...
meanwhile Er-α is an estrogen nuclear receptor which allows the action of such hormone on reproductive development in embryo and fetus.5353 Bondesson M, Hao R, Lin CY, Williams C, Gustafsson JA. Estrogen receptor signaling during vertebrate development. Biochim Biophys Acta. 2015;1849(02):142–151. Doi: 10.1016/j.bbagrm.2014. 06.005
https://doi.org/10.1016/j.bbagrm.2014.06...
Ppar-α regulates lipid metabolism5454 Grygiel-Górniak B. Peroxisome proliferator-activated receptors and their ligands: nutritional and clinical implications–a review. Nutr J. 2014;13:17. Doi: 10.1186/1475-2891-13-17
https://doi.org/10.1186/1475-2891-13-17...
and Ppar-γ regulates both glucose metabolism and storage of fatty acids.5555 Michalik L, Auwerx J, Berger JP, et al. International Union of Pharmacology. LXI. Peroxisome proliferator-activated receptors. Pharmacol Rev. 2006;58(04):726–741. Doi: 10.1124/pr.58.4.5
https://doi.org/10.1124/pr.58.4.5...
The conservation of those genes expression is a relevant finding due to they are essential to several aspects of fetal development, such as growth and cell metabolism.

During embryogenesis, a new pattern of DNA methylation is set up5656 Feng S, Jacobsen SE, Reik W. Epigenetic reprogramming in plant and animal development. Science. 2010;330(6004):622–627. Doi: 10.1126/science.1190614
https://doi.org/10.1126/science.1190614...
and is vulnerable to environmental factors such as maternal diet. Any alteration is likely to predispose disorders in long-term since aberrant or deregulated models of DNA methylation are associated with many diseases in human beings.5757 Kulis M, Esteller M. DNA methylation and cancer. Adv Genet. 2010;70:27–56. Doi: 10.1016/B978-0-12-380866-0.60002-2
https://doi.org/10.1016/B978-0-12-380866...

Organogenesis is a complex process that is under the influence of harmful conditions and drugs during the gestational period. FA seems to be effective to mitigate the disorders caused by teratogens or prevent some complications from such exposure in the kidney and other organs. Its protective effect observed in the offspring's kidney of dams exposed to AZA is corroborated by Ojeda et al.5858 Ojeda ML, Nogales F, Jotty K, Barrero MJ, Murillo ML, Carreras O. Dietary selenium plus folic acid as an antioxidant therapy for ethanol-exposed pups. Birth Defects Res B Dev Reprod Toxicol. 2009;86(06):490–495. Doi: 10.1002/bdrb.20211
https://doi.org/10.1002/bdrb.20211...
when showing that FA administered with alcohol to pregnant rats avoided hepatic damages in the puppies at late life.

One of the ways to protection performed by FA is antioxidant activity. Its intake during pregnancy was able to preserve the glutathione reductase and catalase activity in the kidney of puppies whose mothers consumed alcohol. Catalase is related to superoxide dismutase in the removal of hydrogen peroxide and folate conjugated to catalase increases the ability of this enzyme to neutralize these reactive oxygen-derived species (RODS) being produced during some cell process that are potentially harmful.5959 Lee S, Murthy N. Targeted delivery of catalase and superoxide dismutase to macrophages using folate. Biochem Biophys Res Commun. 2007;360(01):275–279. Doi: 10.1016/j.bbrc.2007.06. 054
https://doi.org/10.1016/j.bbrc.2007.06.0...

Lipid and protein peroxidation is one of the damage mechanisms triggered by free radicals and RODS and occurs when there is imbalance between generation and capacity to eliminate it, which features oxidative stress.6060 Iborra A, Palacio JR, Martínez P. Oxidative stress and autoimmune response in the infertile woman. Chem Immunol Allergy. 2005; 88:150–162. Doi: 10.1159/000087832
https://doi.org/10.1159/000087832...
The kidneys are susceptible organs due to plenty of polyunsaturated fatty acids in renal lipid composition6161 Rodrigo R, Rivera G. Renal damage mediated by oxidative stress: a hypothesis of protective effects of red wine. Free Radic Biol Med. 2002;33(03):409–422. Doi: 10.1016/s0891-5849(02)00908-5
https://doi.org/10.1016/s0891-5849(02)00...
FA associated with selenium also reestablished the protein overall content in the kidney of puppies from dams exposed to ethanol, reinforcing its effectiveness in preventing the protein peroxidation caused by oxidative molecules.

According to Dennery,6262 Dennery PA. Oxidative stress in development: nature or nurture? Free Radic Biol Med. 2010;49(07):1147–1151. Doi: 10.1016/j. freeradbiomed.2010.07.011
https://doi.org/10.1016/j.freeradbiomed....
the embryo development may be rather affected by such molecules due to the reduced capacity to neutralize them, since the embryo develops in an environment with relatively low oxygen levels. Oxidative stress can trigger off failure in embryo implantation, abortions, and congenital malformations.6060 Iborra A, Palacio JR, Martínez P. Oxidative stress and autoimmune response in the infertile woman. Chem Immunol Allergy. 2005; 88:150–162. Doi: 10.1159/000087832
https://doi.org/10.1159/000087832...

Despite its protective properties, FA cannot be enough to suppress completely the impact of some acute and important aggressions during the gestational period, for instance, changes in renal ions transport unleashed by maternal deprivation of protein,4949 Król E, Krejpcio Z, Chmurzynska A. Folic acid and protein content in maternal diet and postnatal high-fat feeding affect the tissue levels of iron, zinc, and copper in the rat. Biol Trace Elem Res. 2011;144(1-3):885–893. Doi: 10.1007/s12011-011-9048-3
https://doi.org/10.1007/s12011-011-9048-...
as well as the reduced glomerular filtration observed in the litter of ethanol-exposed dams during gestation was not prevented by FA + Se supplementation.4747 Ojeda ML, Nogales F, Murillo ML, Carreras O. Selenium or selenium plus folic acid-supplemented diets ameliorate renal oxidation in ethanol-exposed pups. Alcohol Clin Exp Res. 2012;36(11): 1863–1872. Doi: 10.1111/j.1530-0277.2012.01788.x
https://doi.org/10.1111/j.1530-0277.2012...
Hostile conditions can compromise embryonic nephrogenesis and in turn, alter the glomerular filtration rate.6363 Araujo Guedes RC, de Alburquerque Paiva AM, Amâncio-dosSantos A, Vieira-Filho LD, Oliveira da Paixão AD. On some physiological aspects of ethanol repercussion on neural and cardiorenal functions. Cent Nerv Syst Agents Med Chem. 2009;9(04): 277–288. Doi: 10.2174/187152409789630433
https://doi.org/10.2174/1871524097896304...
Albeit FA has not reverted some disorders associated with nephrogenesis, it is suggested that folate deficiency might impact this process through epigenetic modulation.4343 Lee YQ, Collins CE, Gordon A, Rae KM, Pringle KG. The relationship between maternal nutrition during pregnancy and offspring kidney structure and function in humans: a systematic review. Nutrients. 2018;10(02):E241. Doi: 10.3390/nu10020241
https://doi.org/10.3390/nu10020241...
There are hypotheses that little availability of folate, B12 vitamin, and other nutrients affects the volume of the kidneys and decreases the nephrons number of the offspring, predisposing to chronic renal disease in adulthood,4545 Miliku K, Mesu A, Franco OH, Hofman A, Steegers EAP, Jaddoe VWV. Maternal and fetal folate, vitamin B12, and homocysteine concentrations and childhood kidney outcomes. Am J Kidney Dis. 2017;69(04):521–530. Doi: 10.1053/j.ajkd.2016.11.014
https://doi.org/10.1053/j.ajkd.2016.11.0...
,6464 Hawkesworth S, Wagatsuma Y, Kahn AI, et al. Combined food and micronutrient supplements during pregnancy have limited impact on child blood pressure and kidney function in rural Bangladesh. J Nutr. 2013;143(05):728–734. Doi: 10.3945/ jn.112.168518
https://doi.org/10.3945/jn.112.168518...
it reinforcing the concept of fetal programming.

In short, because of the large variety of maternal factors which may exert influence on fetal organogenesis and the intrinsic vulnerability of this process, studies that evaluate the supplementation with this one and other nutrients, as well as their absence, can enlighten the benefits and ensure the safe use in order to maintain the descendants' health.

Conclusion

Gestational FA supplementation did not cause renal toxicity; it exerted antioxidant protective effect and mitigated some renal disorders unleashed by severe aggressions.

Acknowledgments

Poliana dos Santos Conde and Flavia de Bittencourt Brasil thank for the support given by the Universidade Federal Fluminense.

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Publication Dates

  • Publication in this collection
    30 June 2023
  • Date of issue
    2023

History

  • Received
    25 July 2022
  • Accepted
    17 Oct 2022
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