Dietary Intake of Selenium in Relation to Pubertal Development in Mexican Children
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Population
2.2. Dietary Intake of Selenium
2.3. Pubertal Measurement
2.4. Covariates
2.5. Statistical Analysis
3. Results
4. Discussion
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- Sorensen, K.; Mouritsen, A.; Aksglaede, L.; Hagen, C.P.; Mogensen, S.S.; Juul, A. Recent secular trends in pubertal timing: Implications for evaluation and diagnosis of precocious puberty. Horm. Res. Paediatr. 2012, 77, 137–145. [Google Scholar] [CrossRef] [PubMed]
- Golub, M.S.; Collman, G.W.; Foster, P.M.; Kimmel, C.A.; Rajpert-De Meyts, E.; Reiter, E.O.; Sharpe, R.M.; Skakkebaek, N.E.; Toppari, J. Public health implications of altered puberty timing. Pediatrics 2008, 121, S218–S230. [Google Scholar] [CrossRef] [PubMed]
- Soliman, A.; De Sanctis, V.; Elalaily, R. Nutrition and pubertal development. Indian J. Endocrinol. Metab. 2014, 18, S39–S47. [Google Scholar] [CrossRef] [PubMed]
- World Health Organization. Nutrition in Adolescence: Issues and Challenges for the Health Sector: Issues in Adolescent Health and Development; World Health Organization: Geneva, Switzerland, 2005. [Google Scholar]
- Kieliszek, M.; Blazejak, S. Current Knowledge on the Importance of Selenium in Food for Living Organisms: A Review. Molecules 2016, 21, 609. [Google Scholar] [CrossRef] [PubMed]
- Kieliszek, M.; Lipinski, B. Pathophysiological significance of protein hydrophobic interactions: An emerging hypothesis. Med. Hypotheses. 2018, 110, 15–22. [Google Scholar] [CrossRef]
- Kieliszek, M. Selenium(-)Fascinating Microelement, Properties and Sources in Food. Molecules 2019, 24, 1298. [Google Scholar] [CrossRef] [PubMed]
- Mahima; Verma, A.K.; Kumar, A.; Rahal, A.; Kumar, V.; Roy, D. Inorganic versus organic selenium supplementation: A review. Pak. J. Biol. Sci. 2012, 15, 418–425. [Google Scholar]
- National Institutes of Health. Selenium: Fact Sheet for Health Professionals. Available online: https://ods.od.nih.gov/factsheets/Selenium-HealthProfessional/#en3 (accessed on 6 July 2019).
- Qazi, I.H.; Angel, C.; Yang, H.; Pan, B.; Zoidis, E.; Zeng, C.J.; Han, H.; Zhou, G.B. Selenium, Selenoproteins, and Female Reproduction: A Review. Molecules 2018, 23, 3053. [Google Scholar] [CrossRef]
- Pieczynska, J.; Grajeta, H. The role of selenium in human conception and pregnancy. J. Trace Elem. Med. Biol. 2015, 29, 31–38. [Google Scholar] [CrossRef]
- Safarinejad, M.R.; Safarinejad, S. Efficacy of selenium and/or N-acetyl-cysteine for improving semen parameters in infertile men: A double-blind, placebo controlled, randomized study. J. Urol. 2009, 181, 741–751. [Google Scholar] [CrossRef]
- Grazul-Bilska, A.T.; Neville, T.L.; Borowczyk, E.; Sharma, A.; Reynolds, L.P.; Caton, J.S.; Redmer, D.A.; Vonnahme, K.A. Ovarian and uterine characteristics and onset of puberty in adolescent offspring: Effects of maternal diet and selenium supplementation in sheep. Theriogenology 2014, 81, 887–895. [Google Scholar] [CrossRef] [PubMed]
- German, A.; Shmoish, M.; Hochberg, Z. Predicting pubertal development by infantile and childhood height, BMI, and adiposity rebound. Pediatr. Res. 2015, 78, 445–450. [Google Scholar] [CrossRef] [PubMed]
- Kaplowitz, P.B. Link between body fat and the timing of puberty. Pediatrics 2008, 121, S208–S217. [Google Scholar] [CrossRef] [PubMed]
- Siervogel, R.M.; Demerath, E.W.; Schubert, C.; Remsberg, K.E.; Chumlea, W.C.; Sun, S.; Czerwinski, S.A.; Towne, B. Puberty and body composition. Horm. Res. 2003, 60, 36–45. [Google Scholar] [CrossRef] [PubMed]
- Copeland, K.C.; Kuehl, T.J.; Castracane, V.D. Pubertal endocrinology of the baboon: Elevated somatomedin-C/insulin-like growth factor I at puberty. J. Clin. Endocrinol. Metab. 1982, 55, 1198–1201. [Google Scholar] [CrossRef] [PubMed]
- Luna, A.M.; Wilson, D.M.; Wibbelsman, C.J.; Brown, R.C.; Nagashima, R.J.; Hintz, R.L.; Rosenfeld, R.G. Somatomedins in adolescence: A cross-sectional study of the effect of puberty on plasma insulin-like growth factor I and II levels. J. Clin. Endocrinol. Metab. 1983, 57, 268–271. [Google Scholar] [CrossRef] [PubMed]
- Wolfe, A.; Divall, S.; Wu, S. The regulation of reproductive neuroendocrine function by insulin and insulin-like growth factor-1 (IGF-1). Front. Neuroendocrinol. 2014, 35, 558–572. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Pizzino, G.; Irrera, N.; Cucinotta, M.; Pallio, G.; Mannino, F.; Arcoraci, V.; Squadrito, F.; Altavilla, D.; Bitto, A. Oxidative Stress: Harms and Benefits for Human Health. Oxid. Med. Cell. Longev. 2017, 2017, 8416763. [Google Scholar] [CrossRef]
- Afeiche, M.; Peterson, K.E.; Sanchez, B.N.; Cantonwine, D.; Lamadrid-Figueroa, H.; Schnaas, L.; Ettinger, A.S.; Hernandez-Avila, M.; Hu, H.; Tellez-Rojo, M.M. Prenatal lead exposure and weight of 0- to 5-year-old children in Mexico city. Environ. Health Perspect. 2011, 119, 1436–1441. [Google Scholar] [CrossRef]
- Bashash, M.; Thomas, D.; Hu, H.; Martinez-Mier, E.A.; Sanchez, B.N.; Basu, N.; Peterson, K.E.; Ettinger, A.S.; Wright, R.; Zhang, Z.; et al. Prenatal Fluoride Exposure and Cognitive Outcomes in Children at 4 and 6–12 Years of Age in Mexico. Environ. Health Perspect. 2017, 125, 097017. [Google Scholar] [CrossRef]
- Villalpando, S.; Garcia-Guerra, A.; Ramirez-Silva, C.I.; Mejia-Rodriguez, F.; Matute, G.; Shamah-Levy, T.; Rivera, J.A. Iron, zinc and iodide status in Mexican children under 12 years and women 12–49 years of age. A probabilistic national survey. Salud Publica Mex. 2003, 45, S520–S529. [Google Scholar] [CrossRef] [PubMed]
- Cantoral, A.; Tellez-Rojo, M.; Shamah-Levy, T.; Schnaas, L.; Hernandez-Avila, M.; Peterson, K.E.; Ettinger, A.S. Prediction of Serum Zinc Levels in Mexican Children at 2 Years of Age Using a Food Frequency Questionnaire and Different Zinc Bioavailability Criteria. Food Nutr. Bull. 2015, 36, 111–119. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Arora, M.; Ettinger, A.S.; Peterson, K.E.; Schwartz, J.; Hu, H.; Hernandez-Avila, M.; Tellez-Rojo, M.M.; Wright, R.O. Maternal dietary intake of polyunsaturated fatty acids modifies the relationship between lead levels in bone and breast milk. J. Nutr. 2008, 138, 73–79. [Google Scholar] [CrossRef] [PubMed]
- Willett, W.C.; Howe, G.R.; Kushi, L.H. Adjustment for total energy intake in epidemiologic studies. Am. J. Clin. Nutr. 1997, 65, 1220S–1228S. [Google Scholar] [CrossRef] [PubMed]
- Marshall, W.A.; Tanner, J.M. Variations in the pattern of pubertal changes in boys. Arch. Dis. Child. 1970, 45, 13–23. [Google Scholar] [CrossRef]
- Marshall, W.A.; Tanner, J.M. Variations in pattern of pubertal changes in girls. Arch. Dis. Child. 1969, 44, 291–303. [Google Scholar] [CrossRef]
- Liu, Y.; Tellez-Rojo, M.M.; Sanchez, B.N.; Zhang, Z.; Afeiche, M.C.; Mercado-Garcia, A.; Hu, H.; Meeker, J.D.; Peterson, K.E. Early lead exposure and pubertal development in a Mexico City population. Environ. Int. 2019, 125, 445–451. [Google Scholar] [CrossRef]
- WHO Multicentre Growth Reference Study Group. WHO Child Growth Standards: Length/Height-for-Age, Weight-for-Age, Weight-for-Length, Weight-for-Height and Body Mass Index-for-Age: Methods and Development; World Health Organization: Geneva, Switzerland, 2006; (312 pages). [Google Scholar]
- López-Romo, H. Actualización Regla AMAI NSE 8 × 7. In Congreso AMAI; Mexico; 2011; Available online: http://www.amai.org/congreso/2011/ponencias/heriberto_lopez.pdf (accessed on 6 July 2019).
- Ronaghy, H.A.; Halsted, J.A. Zinc deficiency occurring in females. Report of two cases. Am. J. Clin. Nutr. 1975, 28, 831–836. [Google Scholar] [CrossRef]
- Sandstead, H.H.; Prasad, A.S.; Schulert, A.R.; Farid, Z.; Miale, A., Jr.; Bassilly, S.; Darby, W.J. Human zinc deficiency, endocrine manifestations and response to treatment. Am. J. Clin. Nutr. 1967, 20, 422–442. [Google Scholar] [CrossRef]
- Carter, J.P.; Grivetti, L.E.; Davis, J.T.; Nasiff, S.; Mansour, A.; Mousa, W.A.; Atta, A.E.; Patwardhan, V.N.; Abdel Moneim, M.; Abdou, I.A.; et al. Growth and sexual development of adolescent Egyptian village boys. Effects of zinc, iron, and placebo supplementation. Am. J. Clin. Nutr. 1969, 22, 59–78. [Google Scholar] [CrossRef]
- Morris, D.H.; Jones, M.E.; Schoemaker, M.J.; Ashworth, A.; Swerdlow, A.J. Determinants of age at menarche in the UK: Analyses from the Breakthrough Generations Study. Br. J. Cancer 2010, 103, 1760–1764. [Google Scholar] [CrossRef] [PubMed]
- Ramezani Tehrani, F.; Mirmiran, P.; Gholami, R.; Moslehi, N.; Azizi, F. Factors influencing menarcheal age: Results from the cohort of tehran lipid and glucose study. Int. J. Endocrinol. Metab. 2014, 12, e16130. [Google Scholar] [CrossRef] [PubMed]
- Kleinbaum, D.G.; Klein, M. Survival Analysis A Self-Learning Text, 3rd ed.; Springer Science + Business Media, LLC: New York, NY, USA, 2012. [Google Scholar]
- Auchus, R.J.; Rainey, W.E. Adrenarche—Physiology, biochemistry and human disease. Clin. Endocrinol. 2004, 60, 288–296. [Google Scholar] [CrossRef]
- Nestler, J.E.; Barlascini, C.O.; Clore, J.N.; Blackard, W.G. Dehydroepiandrosterone reduces serum low density lipoprotein levels and body fat but does not alter insulin sensitivity in normal men. J. Clin. Endocrinol. Metab. 1988, 66, 57–61. [Google Scholar] [CrossRef] [PubMed]
- Hernandez-Morante, J.J.; Perez-de-Heredia, F.; Lujan, J.A.; Zamora, S.; Garaulet, M. Role of DHEA-S on body fat distribution: Gender- and depot-specific stimulation of adipose tissue lipolysis. Steroids 2008, 73, 209–215. [Google Scholar] [CrossRef]
- Wang, Y.; Gao, X.; Pedram, P.; Shahidi, M.; Du, J.; Yi, Y.; Gulliver, W.; Zhang, H.; Sun, G. Significant Beneficial Association of High Dietary Selenium Intake with Reduced Body Fat in the CODING Study. Nutrients 2016, 8, 24. [Google Scholar] [CrossRef]
- Spina, A.; Guallar, E.; Rayman, M.P.; Tigbe, W.; Kandala, N.B.; Stranges, S. Anthropometric indices and selenium status in British adults: The U.K. National Diet and Nutrition Survey. Free Radic. Biol. Med. 2013, 65, 1315–1321. [Google Scholar] [CrossRef]
- Mast, M.; Kortzinger, I.; Konig, E.; Muller, M.J. Gender differences in fat mass of 5–7-year old children. Int. J. Obes. Relat. Metab. Disord. 1998, 22, 878–884. [Google Scholar] [CrossRef]
- Pazos, F.; Sanchez-Franco, F.; Balsa, J.; Lopez-Fernandez, J.; Escalada, J.; Cacicedo, L. Regulation of gonadal and somatotropic axis by chronic intraventricular infusion of insulin-like growth factor 1 antibody at the initiation of puberty in male rats. Neuroendocrinology 1999, 69, 408–416. [Google Scholar] [CrossRef]
- Keene, D.E.; Suescun, M.O.; Bostwick, M.G.; Chandrashekar, V.; Bartke, A.; Kopchick, J.J. Puberty is delayed in male growth hormone receptor gene-disrupted mice. J. Androl. 2002, 23, 661–668. [Google Scholar]
- Alehagen, U.; Johansson, P.; Aaseth, J.; Alexander, J.; Brismar, K. Increase in insulin-like growth factor 1 (IGF-1) and insulin-like growth factor binding protein 1 after supplementation with selenium and coenzyme Q10. A prospective randomized double-blind placebo-controlled trial among elderly Swedish citizens. PLoS ONE 2017, 12, e0178614. [Google Scholar] [CrossRef] [PubMed]
- Maggio, M.; De Vita, F.; Lauretani, F.; Butto, V.; Bondi, G.; Cattabiani, C.; Nouvenne, A.; Meschi, T.; Dall’Aglio, E.; Ceda, G.P. IGF-1, the cross road of the nutritional, inflammatory and hormonal pathways to frailty. Nutrients 2013, 5, 4184–4205. [Google Scholar] [CrossRef] [PubMed]
- Ursini, F.; Heim, S.; Kiess, M.; Maiorino, M.; Roveri, A.; Wissing, J.; Flohe, L. Dual function of the selenoprotein PHGPx during sperm maturation. Science 1999, 285, 1393–1396. [Google Scholar] [CrossRef] [PubMed]
- Byrns, C.N.; Pitts, M.W.; Gilman, C.A.; Hashimoto, A.C.; Berry, M.J. Mice lacking selenoprotein P and selenocysteine lyase exhibit severe neurological dysfunction, neurodegeneration, and audiogenic seizures. J. Biol. Chem. 2014, 289, 9662–9674. [Google Scholar] [CrossRef]
- Brown, D.G.; Burk, R.F. Selenium retention in tissues and sperm of rats fed a Torula yeast diet. J. Nutr. 1973, 103, 102–108. [Google Scholar] [CrossRef] [PubMed]
- Behne, D.; Duk, M.; Elger, W. Selenium content and glutathione peroxidase activity in the testis of the maturing rat. J. Nutr. 1986, 116, 1442–1447. [Google Scholar] [CrossRef] [PubMed]
- Pitts, M.W.; Kremer, P.M.; Hashimoto, A.C.; Torres, D.J.; Byrns, C.N.; Williams, C.S.; Berry, M.J. Competition between the Brain and Testes under Selenium-Compromised Conditions: Insight into Sex Differences in Selenium Metabolism and Risk of Neurodevelopmental Disease. J. Neurosci. 2015, 35, 15326–15338. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Lopez, R.; Revilla, A.; Tortora, J. La Deficiencia de Selenio. Available online: http://www.cyd.conacyt.gob.mx/archivo/261/articulos/deficiencia-del-selenio.html (accessed on 6 July 2019).
Characteristics | Overall (N = 519) | Boys (N = 245) | Girls (N = 274) |
---|---|---|---|
Children | |||
Age (year) | 13.9 (2.1) | 13.9 (2.0) | 13.9 (2.1) |
BMI z-score | 0.5 (1.2) | 0.4 (1.3) | 0.6 (1.2) |
Number of siblings at birth | 2.0 (1.0) | 2.0 (1.0) | 2.0 (1.0) |
Mothers | |||
Maternal age (year) | 26.4 (5.4) | 26.1 (5.4) | 26.6 (5.5) |
Marital status | |||
Yes | 376 (71.2%) | 178 (72.7%) | 192 (70.1%) |
No | 152 (28.8%) | 67 (27.3%) | 82 (29.9%) |
Smoking history | |||
Ever | 248 (47.7%) | 117 (47.8%) | 131 (47.8%) |
Never | 272 (52.3%) | 128 (52.2%) | 143 (52.2%) |
Household socioeconomic status | |||
Lower class | 144 (27.2%) | 59 (24.3%) | 81 (29.9%) |
Middle class | 354 (66.8%) | 168 (69.1%) | 176 (64.9%) |
Upper class | 32 (6.0%) | 16 (6.6%) | 14 (5.2%) |
Selenium | |||
dietary intake (μg/d) * | 35.8 (25.1, 32.6, 42.5, 52.8) | 35.9 (24.4, 31.7, 41.7, 55.1) | 35.7 (25.3, 34.0, 42.8, 51.7) |
Measure | Stage | N (%) |
---|---|---|
Boys | ||
Pubic hair | 1 | 47 (19.2) |
2 | 31 (12.7) | |
3 | 63 (25.7) | |
4 | 54 (22.0) | |
5 | 50 (20.4) | |
Genitalia | 1 | 13 (5.3) |
2 | 33 (13.5) | |
3 | 43 (17.6) | |
4 | 103 (42.0) | |
5 | 53 (21.6) | |
Testicular volume | Yes (≥20 mL) | 171 (69.8) |
No | 74 (30.2) | |
Girls | ||
Pubic hair | 1 | 18 (6.8) |
2 | 65 (24.4) | |
3 | 63 (23.7) | |
4 | 68 (25.6) | |
5 | 52 (19.6) | |
Breast | 1 | 11 (4.1) |
2 | 26 (9.8) | |
3 | 69 (25.9) | |
4 | 98 (36.8) | |
5 | 62 (23.3) | |
Menarche | Yes | 230 (84.9) |
No | 41 (15.1) |
Variable | Pubic Hair a | Breast a | Menarche b | |||
---|---|---|---|---|---|---|
OR (95% CI) | p-Value | OR (95% CI) | p-Value | HR (95% CI) | p-Value | |
Dietary intake of selenium (below RDA vs. above RDA) | 0.98 (0.52, 1.86) | 0.951 | 1.34 (0.70, 2.57) | 0.377 | 0.90 (0.62, 1.33) | 0.606 |
Child Age | 2.40 (2.06, 2.80) | <0.0001 | 2.52 (2.13, 2.97) | <0.0001 | - | |
Child BMI z-score | 1.35 (1.10, 1.64) | 0.004 | 1.49 (1.21, 1.84) | 0.000 | 1.22 (1.08, 1.36) | 0.001 |
Number of siblings at birth | 0.94 (0.73, 1.22) | 0.658 | 0.99 (0.77, 1.29) | 0.975 | 0.86 (0.74, 1.00) | 0.046 |
Maternal age | 1.03 (0.98, 1.08) | 0.179 | 0.99 (0.95, 1.05) | 0.883 | 1.00 (0.97, 1.03) | 0.917 |
Maternal marital status (reference: single) | 0.46 (0.27, 0.79) | 0.004 | 0.49 (0.28, 0.84) | 0.010 | 0.76 (0.56, 1.03) | 0.073 |
Maternal smoking history (reference: never) | 1.24 (0.77, 1.99) | 0.371 | 1.06 (0.65, 1.72) | 0.825 | 1.15 (0.87, 1.52) | 0.340 |
Household socioeconomic status (reference: lower class) | ||||||
Middle class | 1.19 (0.71, 2.02) | 0.694 | 1.58 (0.92, 2.72) | 0.857 | 0.78 (0.57, 1.07) | 0.129 |
Upper class | 1.84 (0.58, 5.76) | 0.347 | 2.83 (0.86, 9.35) | 0.160 | 0.96 (0.51, 1.82) | 0.910 |
Variable | Pubic Hair | Genitalia | Testicular Volume | |||
---|---|---|---|---|---|---|
OR (95% CI) | p-Value | OR (95% CI) | p-Value | OR (95% CI) | p-Value | |
Dietary intake of selenium (below RDA vs. above RDA) | 0.51 (0.27, 0.97) | 0.039 | 0.53 (0.28, 0.99) | 0.049 | 0.37 (0.15, 0.88) | 0.024 |
Child Age | 3.33 (2.74, 4.06) | <0.0001 | 2.48 (2.08, 2.95) | <0.0001 | 2.33 (1.84, 2.94) | <0.0001 |
Child BMI z-score | 1.01 (0.83, 1.23) | 0.887 | 0.81 (0.67, 0.99) | 0.037 | 1.34 (1.03, 1.74) | 0.031 |
Number of siblings at birth | 0.72 (0.56, 0.92) | 0.010 | 0.81 (0.63, 1.03) | 0.087 | 0.94 (0.67, 1.32) | 0.710 |
Maternal age | 1.03 (0.98, 1.09) | 0.206 | 1.05 (0.99, 1.10) | 0.083 | 0.97 (0.90, 1.03) | 0.302 |
Maternal marital status (reference: single) | 0.69 (0.39, 1.20) | 0.187 | 0.93 (0.53, 1.61) | 0.788 | 0.88 (0.41, 1.88) | 0.739 |
Maternal smoking history (reference: never) | 0.84 (0.51, 1.39) | 0.505 | 0.80 (0.49, 1.32) | 0.393 | 0.93 (0.47, 1.84) | 0.832 |
Household socioeconomic status (reference: lower class) | ||||||
Middle class | 0.97 (0.54, 1.72) | 0.506 | 1.39 (0.78, 2.47) | 0.052 | 0.93 (0.41, 2.08) | 0.679 |
Upper class | 0.61 (0.21, 1.81) | 0.358 | 0.56 (0.19, 1.65) | 0.146 | 0.59 (0.12, 2.83) | 0.512 |
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Liu, Y.; Peterson, K.E.; Sánchez, B.N.; Jones, A.D.; Cantoral, A.; Mercado-García, A.; Solano-González, M.; Ettinger, A.S.; Téllez-Rojo, M.M. Dietary Intake of Selenium in Relation to Pubertal Development in Mexican Children. Nutrients 2019, 11, 1595. https://doi.org/10.3390/nu11071595
Liu Y, Peterson KE, Sánchez BN, Jones AD, Cantoral A, Mercado-García A, Solano-González M, Ettinger AS, Téllez-Rojo MM. Dietary Intake of Selenium in Relation to Pubertal Development in Mexican Children. Nutrients. 2019; 11(7):1595. https://doi.org/10.3390/nu11071595
Chicago/Turabian StyleLiu, Yun, Karen E. Peterson, Brisa N. Sánchez, Andrew D. Jones, Alejandra Cantoral, Adriana Mercado-García, Maritsa Solano-González, Adrienne S. Ettinger, and Martha M. Téllez-Rojo. 2019. "Dietary Intake of Selenium in Relation to Pubertal Development in Mexican Children" Nutrients 11, no. 7: 1595. https://doi.org/10.3390/nu11071595
APA StyleLiu, Y., Peterson, K. E., Sánchez, B. N., Jones, A. D., Cantoral, A., Mercado-García, A., Solano-González, M., Ettinger, A. S., & Téllez-Rojo, M. M. (2019). Dietary Intake of Selenium in Relation to Pubertal Development in Mexican Children. Nutrients, 11(7), 1595. https://doi.org/10.3390/nu11071595