Referências

Introdução

  • Palmery M, Saraceno A, Vaiarelli A, Carlomagno G. Oral contraceptives and changes in nutritional requirements. Eur Rev Med Pharmacol Sci. 2013 Jul;17(13):1804-13. PMID: 23852908.
  • Thorp VJ. Effect of oral contraceptive agents on vitamin and mineral requirements. J Am Diet Assoc. 1980 Jun;76(6):581-4. PMID: 7400487.
  • Purity Njagi, Wim Groot, Jelena Arsenijevic, Silke Dyer, Gitau Mburu, James Kiarie, Financial costs of assisted reproductive technology for patients in low- and middle-income countries: a systematic review, Human Reproduction Open, Volume 2023, Issue 2, 2023, hoad007, https://doi.org/10.1093/hropen/hoad007.
  • Sadecki, E., et al. “Fertility trends and comparisons in a historical cohort of US women with primary infertility.” Reproductive Health. Reproductive Health 19(1) (2022)
  • Nichols, Lily; Hendrickson-Jack, Lisa. Real Food for Fertility: Prepare your body for pregnancy with preconception nutrition and fertility awareness. Fertility Food Publishing. Edição do Kindle.
  • Liffander, A., et al. “Circumstances of pregnancy: low income women in Georgia describe the di"erence between planned and unplanned pregnancies.” Maternal and Child Health Journal 11(1) (2007): 81–89; “Healthy People 2010.” National Center for Health Statistics. U.S. Centers for Disease Control and Prevention. http://www.healthypeople. gov/Document/HTML/Volume1/09Family.htm. Accessed January 2022.
  • Kelleher, A.M., et al. “Uterine glands coordinate on-time embryo implantation and impact endometrial decidualization for pregnancy success.” Nature Communications 9(1) (2018): 1–12.
  • Vander Borght, M., and C. Wyns. “Fertility and infertility: de#nition and epidemiology.” Clinical Biochemistry 62 (2018): 2–10; Inhorn, M.C., and P. Patrizio. “Infertility around the globe: new thinking on gender, reproductive technologies and global movements in the 21st century.” Human Reproduction Update 21(4) (2015): 411–426; $oma, M.E., et al. “Prevalence of infertility in the United States as estimated by the current duration approach and a traditional constructed approach.” Fertility and Sterility 99(5) (2013): 1324–1331; Datta, J., et al. “Prevalence of infertility and help seeking among 15 000 women and men.” Human Reproduction 31(9) (2016): 2108–2118; Ombelet, W., et al. “Infertility and the provision of infertility medical services in developing countries.” Human Reproduction Update 14(6) (2008): 605–621; Agarwal, A., et al. “A unique view on male infertility around the globe.” Reproductive Biology and Endocrinology 13(1) (2015): 37.
  • Klimczak, A.M., et al. “Role of the sperm, oocyte, and embryo in recurrent pregnancy loss.” Fertility and Sterility 115(3) (2021): 533–537; Gao, H. “Amino acids in reproductive nutrition and health.” Amino Acids in Nutrition and Health (2020): 111–131; Bellver, J., and C. Simón. “Implantation failure of endometrial origin: what is new?” Current Opinion in Obstetrics and Gynecology 30(4) (2018): 229–236.
  • Glazener, C.M.A., and W.C.L. Ford. “Predicting conception.” Human Fertility 5 (2002): S3–S8; Bradley, D., et al. “Time to conception and the menstrual cycle: an observational study of fertility app users who conceived.” Human Fertility (2019): 1–9.
  • Gnoth, C., et al. “De#nition and prevalence of subfertility and infertility.” Human Reproduction 20(5) (2005): 1144–1147.
  • Ibid.; Snick, H.K., et al. “$e spontaneous pregnancy prognosis in untreated subfertile couples: the Walcheren primary care study.” Human Reproduction 12(7) (1997): 1582– 1588.
  • Grieger, J.A., et al. “Maternal selenium, copper and zinc concentrations in early pregnancy, and the association with fertility.” Nutrients 11(7) (2019): 1609; Giudice, L.C. “Environmental toxicants: hidden players on the reproductive stage.” Fertility and Sterility 106(4) (2016): 791–794; Louis, G.M.B., et al. “Semen quality and time to pregnancy: the Longitudinal Investigation of Fertility and the Environment Study.” Fertility and Sterility 101(2) (2014): 453–462.
  • Sadecki, E., et al. “Fertility trends and comparisons in a historical cohort of US women with primary infertility.” Reproductive Health 19(1) (2022): 1–11.
  • American Society for Reproductive Medicine (ASRM). “Quick Facts About Infertility.” https://www.reproductivefacts.org/faqs/quick-facts-about-infertility/, March 8, 2017.
  • Vander Borght, M., and C. Wyns. “Fertility and infertility: de#nition and epidemiology.” Clinical Biochemistry 62 (2018): 2–10; Agarwal, A., et al. “A unique view on male infertility around the globe.” Reproductive Biology and Endocrinology 13(1) (2015): 37; Chavarro, J.E., et al. “A prospective study of dietary carbohydrate quantity and quality in relation to risk of ovulatory infertility.” European Journal of Clinical Nutrition 63(1) (2009): 78–86.
  • Fontana, R., and S. Della Torre. “$e deep correlation between energy metabolism and reproduction: a view on the e"ects of nutrition for women fertility.” Nutrients 8(2) (2016): 87.
  • Spielmann, K.A. “A review: dietary restrictions on hunter-gatherer women and the implications for fertility and infant mortality.” Human Ecology 17(3) (1989): 321–345.
  • Wilmsen, E.N. “Studies in diet, nutrition, and fertility among a group of Kalahari Bushmen in Botswana.” Social Science Information 21(1) (1982): 95–125.
  • Cowlishaw, G. “$e determinants of fertility among Australian Aborigines.” Mankind 13 (1981): 37–55; Spielmann, K.A. “A review: dietary restrictions on hunter-gatherer women and the implications for fertility and infant mortality.” Human Ecology 17(3) (1989): 321–345.
  • Wilmsen, E.N. “Studies in diet, nutrition, and fertility among a group of Kalahari Bushmen in Botswana.” Social Science Information 21(1) (1982): 95–125.
  • Hurtado, A.M., and K.R. Hill. “Seasonality in a foraging society: variation in diet, work e"ort, fertility, and sexual division of labor among the Hiwi of Venezuela.” Journal of Anthropological Research 46(3) (1990): 293–346; Leslie, P.W., and P.H. Fry. “Extreme seasonality of births among nomadic Turkana pastoralists.” American Journal of Physical Anthropology 79(1) (1989): 103–115; Bailey, R.C., et al. “$e ecology of birth seasonality among agriculturalists in central Africa.” Journal of Biosocial Science 24(3) (1992): 393– 412.
  • Price, W.A. (1979). Nutrition and Physical Degeneration: A Comparison of Primitive and Modern Diets and !eir E"ects. New York: Hoeber.
  • Hulshof, P.J.M., et al. “Variation in retinol and carotenoid content of milk and milk products in $e Netherlands.” Journal of Food Composition and Analysis 19(1) (2006): 67–75; Croissant, A.E., et al. “Chemical properties and consumer perception of %uid milk from conventional and pasture-based production systems.” Journal of Dairy Science 90(11) (2007): 4942–4953; Calderón, F., et al. “Variations in carotenoids, vitamins A and E, and color in cow’s plasma and milk following a shift from hay diet to diets containing increasing levels of carotenoids and vitamin E.” Journal of Dairy Science 90(12) (2007): 5651–5664.
  • Cole, S., and L. Hopkins. “Consequences of dietary sugar consumption: a historical perspective.” !e Nurse Practitioner 44(10) (2019): 38–42; Marriott, B.P., et al. “National estimates of dietary fructose intake increased from 1977 to 2004 in the United States.” !e Journal of Nutrition 139(6) (2009): 1228S–1235S.
  • Gross, L.S., et al. “Increased consumption of re#ned carbohydrates and the epidemic of type 2 diabetes in the United States: an ecologic assessment.” !e American Journal of Clinical Nutrition 79(5) (2004): 774–779.
  • Ervin, R.B., and C.L. Ogden. “Consumption of added sugars among US adults, 2005– 2010.” NCHS Data Brief 122 (2013): 1–8.
  • Fulgoni, V.L., et al. “Micronutrient dilution and added sugars intake in US adults: examining this association Using NHANES 2009–2014.” Nutrients 12(4) (2020): 985.
  • Ervin, R.B., and C.L. Ogden. “Consumption of added sugars among US adults, 2005– 2010.” NCHS Data Brief 122 (2013): 1–8.
  • Shan, Zhilei, et al. “Trends in dietary carbohydrate, protein, and fat intake and diet quality among US adults, 1999–2016.” JAMA 322(12) (2019): 1178–1187.
  • Hatch, E.E., et al. “Intake of sugar-sweetened beverages and fecundability in a North American preconception cohort.” Epidemiology 29 (2018): 369–378.
  • Gross, L.S., et al. “Increased consumption of re#ned carbohydrates and the epidemic of type 2 diabetes in the United States: an ecologic assessment.” !e American Journal of Clinical Nutrition 79(5) (2004): 774–779.
  • Blasbalg, T.L., et al. “Changes in consumption of omega-3 and omega-6 fatty acids in the United States during the 20th century.” !e American Journal of Clinical Nutrition 93(5) (2011): 950–962.
  • Mumford, S.L., et al. “Preconception plasma phospholipid fatty acids and fecundability.” !e Journal of Clinical Endocrinology & Metabolism 103(12) (2018): 4501–4510; Jungheim, E.S., et al. “Elevated serum Į-linolenic acid levels are associated with decreased chance of pregnancy after in vitro fertilization.” Fertility and Sterility 96(4) (2011): 880–883.
  • Hamley, S. “$e e"ect of replacing saturated fat with mostly n-6 polyunsaturated fat on coronary heart disease: a meta-analysis of randomised controlled trials.” Nutrition Journal 16(1) (2017): 30; DiNicolantonio, J.J., and J.H. O’Keefe. “Omega-6 vegetable oils as a driver of coronary heart disease: the oxidized linoleic acid hypothesis.” Open Heart 5(2) (2018); Liao, L., et al. “Exploring the causal pathway from omega-6 levels to coronary heart disease: A network Mendelian randomization study.” Nutrition, Metabolism and Cardiovascular Diseases 30(2) (2020): 233–240.
  • DiNicolantonio, J.J., and J.H. O’Keefe. “Omega-6 vegetable oils as a driver of coronary heart disease: the oxidized linoleic acid hypothesis.” Open Heart 5(2) (2018). 33. Huang, Q., et al. “$e e"ects of cholesterol metabolism on follicular development and ovarian function.” Current Molecular Medicine 19(10) (2019): 719–730.
  • Mahalingaiah, S., et al. “Cardiovascular risk factors among women with self-reported infertility.” Fertility Research and Practice 3(1) (2017): 7; Pirnat, A., et al. “Women’s prepregnancy lipid levels and number of children: a Norwegian prospective populationbased cohort study.” BMJ Open 8(6) (2018): e021188.
  • Bird, J.K., et al. “Risk of de#ciency in multiple concurrent micronutrients in children and adults in the United States.” Nutrients 9(7) (2017): 655.
  • Wallace, T.C., and V.L. Fulgoni III. “Assessment of total choline intakes in the United States.” Journal of the American College of Nutrition 35(2) (2016): 108–112.
  • Gostas, D.E., et al. “Dietary relationship with 24 h urinary iodine concentrations of young adults in the mountain west region of the United States.” Nutrients 12(1) (2020): 121.
  • Gradisar, M., et al. “$e sleep and technology use of Americans: #ndings from the National Sleep Foundation’s 2011 Sleep in America poll.” Journal of Clinical Sleep Medicine 9(12) (2013): 1291–1299; Chatzitheochari, S., and S. Arber. “Lack of sleep, work and the long hours culture: evidence from the UK Time Use Survey.” Work, Employment and Society 23(1) (2009): 30–48; Basner, M., et al. “American time use survey: sleep time and its relationship to waking activities.” Sleep 30(9) (2007): 1085–1095.
  • National Sleep Foundation. 2013 International Bedroom Poll. https://sleepfoundation. org/wp-content/uploads/2018/10/NSF_Bedroom_Poll_Report_1.pdf. Accessed October 28, 2020.
  • Charansonney, O.L., and J.-P. Després. “Disease prevention: should we target obesity or sedentary lifestyle?” Nature Reviews Cardiology 7(8) (2010): 468–472.
  • Booth, F.W., et al. “Reduced physical activity and risk of chronic disease: the biology behind the consequences.” European Journal of Applied Physiology 102(4) (2008): 381–390.
  • Pizzorno, Joseph. “Environmental toxins and infertility.” Integrative Medicine: A Clinician’s Journal 17(2) (2018): 8.
  • Gerhard, I., et al. “Chlorinated hydrocarbons in infertile women.” Environmental Research 80(4) (1999): 299–310; Pizzorno, J. “Environmental toxins and infertility.” Integrative Medicine: A Clinician’s Journal 17(2) (2018): 8.
  • Wright, K.P., and J.V. Johnson. “Evaluation of extended and continuous use oral contraceptives.” !erapeutics and Clinical Risk Management 4(5) (2008): 905; Mishell, D.R., et al. “$e e"ect of contraceptive steroids on hypothalamic-pituitary function.” American Journal of Obstetrics & Gynecology 128(1) (1977): 60–74.
  • Baerwald, A.R., and R.A. Pierson. “Ovarian follicular development during the use of oral contraception: a review.” Journal of Obstetrics and Gynaecology Canada 26(1) (2004): 19–24.
  • Basciani, S., and G. Porcaro. “Counteracting side e"ects of combined oral contraceptives through the administration of speci#c micronutrients.” European Review for Medical & Pharmacological Sciences 26.13 (2022).; Palmery, M., et al. “Oral contraceptives and changes in nutritional requirements.” European Review for Medical and Pharmacological Sciences 17(13) (2013): 1805–1808.
  • Barnhart, K.T., and C.A. Schreiber. “Return to fertility following discontinuation of oral contraceptives.” Fertility and Sterility 91(3) (2009): 659–663; Mikkelsen, E.M., et al. “Pre-gravid oral contraceptive use and time to pregnancy: a Danish prospective cohort study.” Human Reproduction 28(5) (2013): 1398–1405.
  • McGee, E.A., and A.J.W. Hsueh. “Initial and cyclic recruitment of ovarian follicles.” Endocrine Reviews 21(2) (2000): 200–214.
  • Hempstock, J., et al. “Endometrial glands as a source of nutrients, growth factors and cytokines during the #rst trimester of human pregnancy: a morphological and immunohistochemical study.” Reproductive Biology and Endocrinology 2(1) (2004): 58; Burton, G.J., et al. “Endometrial secretions: creating a stimulatory microenvironment within the human early placenta and implications for the aetiopathogenesis of preeclampsia.” Journal of Reproductive Immunology 89(2) (2011): 118–125; Filant, J., and T.E. Spencer. “Uterine glands: biological roles in conceptus implantation, uterine receptivity, and decidualization.” !e International Journal of Developmental Biology 58 (2014): 107.
  • Tongsong, T., et al. “Pregnancy outcome of threatened abortion with demonstrable fetal cardiac activity: a cohort study.” Journal of Obstetrics and Gynaecology 21(4) (1995): 331– 335.
  • Gu, L., et al. “Metabolic control of oocyte development: linking maternal nutrition and reproductive outcomes.” Cellular and Molecular Life Sciences 72(2) (2015): 251–271; Ramalho-Santos, J., et al. “Mitochondrial functionality in reproduction: from gonads and gametes to embryos and embryonic stem cells.” Human Reproduction Update 15(5) (2009): 553–572.
  • Wang, X., et al. “Paternally expressed genes predominate in the placenta.” Proceedings of the National Academy of Sciences 110(26) (2013): 10705–10710; Hanna, C.W. “Placental imprinting: emerging mechanisms and functions.” PLOS Genetics 16(4) (2020): e1008709.
  • Galaviz-Hernandez, C., et al. “Paternal determinants in preeclampsia.” Frontiers in Physiology 9 (2019): 1870.
  • Duttaroy, A.K., and S. Basak. “Fat-soluble and antioxidant vitamins and minerals: their roles in placentation.” Early Nutrition and Lifestyle Factors (2016): 69–89.

Pilares da fertilidade

  • McInerney KA, Hahn KA, Hatch EE, Mikkelsen EM, Steiner AZ, Rothman KJ, Sørensen HT, Snerum TM, Wise LA. Lubricant use during intercourse and time to pregnancy: a prospective cohort study. BJOG. 2018 Nov;125(12):1541-1548. doi: 10.1111/1471-0528.15218. Epub 2018 Apr 15. PMID: 29543376; PMCID: PMC6139089.
  • Sandhu RS, Wong TH, Kling CA, Chohan KR. In vitro effects of coital lubricants and synthetic and natural oils on sperm motility. Fertil Steril. 2014 Apr;101(4):941-4. doi: 10.1016/j.fertnstert.2013.12.024. Epub 2014 Jan 23. PMID: 24462060.
  • Steiner AZ, Long DL, Tanner C, Herring AH. Effect of vaginal lubricants on natural fertility. Obstet Gynecol. 2012 Jul;120(1):44-51. doi: 10.1097/AOG.0b013e31825b87ae. PMID: 22914390; PMCID: PMC3427535.
  • Disponível em: http://www.protectyourfertility.com. Acesso em: 16 mar. 2024.
  • TAMURA, H. et al. Melatonin and the ovary: physiological and pathophysiological implications. Fertility and sterility, v. 92, n. 1, p. 328–343, 2009.
  • GUEST BLOGGERS. 5 Ways to Re-Think Fertility and Stress. CNY Fertility, 20 jan. 2011. Disponível em: <https://www.cnyfertility.com/5-ways-to-re-think-fertility-and-stress/>. Acesso em: 16 mar. 2024
  • Pizzorno J. Environmental Toxins and Infertility. Integr Med (Encinitas). 2018 Apr;17(2):8-11. PMID: 30962779; PMCID: PMC6396757.
  • U.S. Department of Health and Human Services (USDHHS). The Health Consequences of Smoking—50 Years of Progress. A Report of the Surgeon General. Atlanta, GA: U.S. Department of Health and Human Services, Centers for Disease Control and Prevention, National Center for Chronic Disease Prevention and Health Promotion, Office on Smoking and Health; 2014.
  • Centers for Disease Control and Prevention, Office on Smoking and Health. Smoking and Reproduction Fact Sheet. Surgeon General’s Report on Smoking and Health 50th Anniversary. https://www.cdc.gov/tobacco/data_statistics/sgr/50th-anniversary/pdfs/fs_smoking_reproduction_508.pdf. Accessed November 5, 2021.
  • U.S. Department of Health and Human Services (USDHHS). Let’s Make the Next Generation Tobacco-Free: Your Guide to the 50th Anniversary Surgeon General’s Report on Smoking and Health (Consumer Booklet). Atlanta, GA: U.S. Department of Health and Human Services, Centers for Disease Control and Prevention, National Center for Chronic Disease Prevention and Health Promotion, Office on Smoking and Health; 2014.
  • U.S. Department of Health and Human Services. The Health Consequences of Involuntary Exposure to Tobacco Smoke: A Report of the Surgeon General. Atlanta, GA: US Dept of Health and Human Services, Centers for Disease Control and Prevention, National Center for Chronic Disease Prevention and Health Promotion, Coordinating Center for Health Promotion, Office on Smoking and Health; 2006.
  • U.S. Department of Health and Human Services (USDHHS). E-Cigarette Use Among Youth and Young Adults: A Report of the Surgeon General. Atlanta, GA: U.S. Department of Health and Human Services, Centers for Disease Control and Prevention, National Center for Chronic Disease Prevention and Health Promotion, Office on Smoking and Health; 2016.
  • Mueller BA, Daling JR, Weiss NS, Moore DE. Recreational drug use and the risk of primary infertility. Epidemiology. 1990 May;1(3):195-200. doi: 10.1097/00001648-199005000-00003. PMID: 2081252.
  • Schifano N, Chiappini S, Mosca A, Miuli A, Santovito MC, Pettorruso M, Capogrosso P, Dehò F, Martinotti G, Schifano F. Recreational Drug Misuse and Its Potential Contribution to Male Fertility Levels' Decline: A Narrative Review. Brain Sci. 2022 Nov 19;12(11):1582. doi: 10.3390/brainsci12111582. PMID: 36421906; PMCID: PMC9688450.
  • Augood C, Duckitt K, Templeton AA. Smoking and female infertility: a systematic review and meta-analysis. Hum Reprod. 1998 Jun;13(6):1532-9. doi: 10.1093/humrep/13.6.1532. PMID: 9688387.
  • Sharma R, Biedenharn KR, Fedor JM, Agarwal A. Lifestyle factors and reproductive health: taking control of your fertility. Reprod Biol Endocrinol. 2013 Jul 16;11:66. doi: 10.1186/1477-7827-11-66. PMID: 23870423; PMCID: PMC3717046.
  • Fronczak CM, Kim ED, Barqawi AB. The insults of illicit drug use on male fertility. J Androl. 2012 Jul-Aug;33(4):515-28. doi: 10.2164/jandrol.110.011874. Epub 2011 Jul 28. PMID: 21799144.
  • Harlow AF, Wesselink AK, Hatch EE, Rothman KJ, Wise LA. Male Preconception Marijuana Use and Spontaneous Abortion: A Prospective Cohort Study. Epidemiology. 2021 Mar 1;32(2):239-247. doi: 10.1097/EDE.0000000000001303. PMID: 33165011; PMCID: PMC7855868.
  • Sansone A, Di Dato C, de Angelis C, Menafra D, Pozza C, Pivonello R, Isidori A, Gianfrilli D. Smoke, alcohol and drug addiction and male fertility. Reprod Biol Endocrinol. 2018 Jan 15;16(1):3. doi: 10.1186/s12958-018-0320-7. PMID: 29334961; PMCID: PMC5769315.
  • Lassi ZS, Imam AM, Dean SV, Bhutta ZA. Preconception care: caffeine, smoking, alcohol, drugs and other environmental chemical/radiation exposure. Reprod Health. 2014 Sep 26;11 Suppl 3(Suppl 3):S6. doi: 10.1186/1742-4755-11-S3-S6. Epub 2014 Sep 26. PMID: 25415846; PMCID: PMC4196566.
  • Cambiaghi, Arnaldo Schizzi; Rosa, Débora de Souza. Fertilidade e alimentação (Portuguese Edition) . La Vida. Edição do Kindle.
  • KRONEMYER, B. How meat consumption impacts endometriosis risk. Disponível em: <https://www.contemporaryobgyn.net/view/how-meat-consumption-impacts-endometriosis-risk>. Acesso em: 17 mar. 2024.
  • Nichols, Lily; Hendrickson-Jack, Lisa. Real Food for Fertility: Prepare your body for pregnancy with preconception nutrition and fertility awareness. Fertility Food Publishing. Edição do Kindle.
  • Dunaif A. Perspectives in Polycystic Ovary Syndrome: From Hair to Eternity. J Clin Endocrinol Metab. 2016 Mar;101(3):759-68. doi: 10.1210/jc.2015-3780. Epub 2016 Feb 23. PMID: 26908109; PMCID: PMC4803161.
  • Diamanti-Kandarakis E, Dunaif A. Insulin resistance and the polycystic ovary syndrome revisited: an update on mechanisms and implications. Endocr Rev. 2012 Dec;33(6):981-1030. doi: 10.1210/er.2011-1034. Epub 2012 Oct 12. PMID: 23065822; PMCID: PMC5393155.
  • Palomba S, de Wilde MA, Falbo A, Koster MP, La Sala GB, Fauser BC. Pregnancy complications in women with polycystic ovary syndrome. Hum Reprod Update. 2015 Sep-Oct;21(5):575-92. doi: 10.1093/humupd/dmv029. Epub 2015 Jun 27. PMID: 26117684.
  • Shah D, Rasool S. Polycystic ovary syndrome and metabolic syndrome: the worrisome twosome? Climacteric. 2016;19(1):7-16. doi: 10.3109/13697137.2015.1116505. Epub 2015 Dec 1. PMID: 26624567.

Nutrição para a fertilidade

  • Sundfør TM, Svendsen M, Tonstad S. Effect of intermittent versus continuous energy restriction on weight loss, maintenance and cardiometabolic risk: A randomized 1-year trial. Nutr Metab Cardiovasc Dis. 2018 Jul;28(7):698-706. doi: 10.1016/j.numecd.2018.03.009. Epub 2018 Mar 29. PMID: 29778565.
  • Seimon RV, Roekenes JA, Zibellini J, Zhu B, Gibson AA, Hills AP, Wood RE, King NA, Byrne NM, Sainsbury A. Do intermittent diets provide physiological benefits over continuous diets for weight loss? A systematic review of clinical trials. Mol Cell Endocrinol. 2015 Dec 15;418 Pt 2:153-72. doi: 10.1016/j.mce.2015.09.014. Epub 2015 Sep 16. PMID: 26384657.
  • Davis CS, Clarke RE, Coulter SN, Rounsefell KN, Walker RE, Rauch CE, Huggins CE, Ryan L. Intermittent energy restriction and weight loss: a systematic review. Eur J Clin Nutr. 2016 Mar;70(3):292-9. doi: 10.1038/ejcn.2015.195. Epub 2015 Nov 25. PMID: 26603882.
  • Wei X, Cooper A, Lee I, Cernoch CA, Huntoon G, Hodek B, Christian H, Chao AM. Intermittent Energy Restriction for Weight Loss: A Systematic Review of Cardiometabolic, Inflammatory and Appetite Outcomes. Biol Res Nurs. 2022 Jul;24(3):410-428. doi: 10.1177/10998004221078079. Epub 2022 May 8. PMID: 35531785; PMCID: PMC9343887.
  • Liu D, Huang Y, Huang C, Yang S, Wei X, Zhang P, Guo D, Lin J, Xu B, Li C, He H, He J, Liu S, Shi L, Xue Y, Zhang H. Calorie Restriction with or without Time-Restricted Eating in Weight Loss. N Engl J Med. 2022 Apr 21;386(16):1495-1504. doi: 10.1056/NEJMoa2114833. PMID: 35443107.
  • Chen JH, Lu LW, Ge Q, Feng D, Yu J, Liu B, Zhang R, Zhang X, Ouyang C, Chen F. Missing puzzle pieces of time-restricted-eating (TRE) as a long-term weight-loss strategy in overweight and obese people? A systematic review and meta-analysis of randomized controlled trials. Crit Rev Food Sci Nutr. 2023;63(15):2331-2347. doi: 10.1080/10408398.2021.1974335. Epub 2021 Sep 23. PMID: 34553667.
  • Radhika V. Seimon, Jessica A. Roekenes, Jessica Zibellini, Benjamin Zhu, Alice A. Gibson, Andrew P. Hills, Rachel E. Wood, Neil A. King, Nuala M. Byrne, Amanda Sainsbury, Do intermittent diets provide physiological benefits over continuous diets for weight loss? A systematic review of clinical trials,Molecular and Cellular Endocrinology, Volume 418, Part 2, 2015, Pages 153-172, ISSN 0303-7207, https://doi.org/10.1016/j.mce.2015.09.014.
  • Naude CE, Schoonees A, Senekal M, Young T, Garner P, Volmink J. Low carbohydrate versus isoenergetic balanced diets for reducing weight and cardiovascular risk: a systematic review and meta-analysis. PLoS One. 2014 Jul 9;9(7):e100652. doi: 10.1371/journal.pone.0100652. Erratum in: PLoS One. 2018 Jul 2;13(7):e0200284. PMID: 25007189; PMCID: PMC4090010.
  • Anton S, Leeuwenburgh C. Fasting or caloric restriction for healthy aging. Exp Gerontol. 2013 Oct;48(10):1003-5. doi: 10.1016/j.exger.2013.04.011. Epub 2013 Apr 29. PMID: 23639403; PMCID: PMC3919445.
  • Iain Templeman et al.,A randomized controlled trial to isolate the effects of fasting and energy restriction on weight loss and metabolic health in lean adults.Sci. Transl. Med.13,eabd8034(2021).DOI:10.1126/scitranslmed.abd8034
  • Nichols, Lily; Hendrickson-Jack, Lisa. Real Food for Fertility: Prepare your body for pregnancy with preconception nutrition and fertility awareness. Fertility Food Publishing. Edição do Kindle.
  • Wright, J.D., et al. “Trends in intake of energy and macronutrients-United States, 1971– 2000.” MMWR: Morbidity & Mortality Weekly Report 53(4) (2004): 80–82. 2. Pencharz, P.B., et al. “Recent developments in understanding protein needs: how much and what kind should we eat?” Applied Physiology, Nutrition, and Metabolism 41(5) (2016): 577–580.
  • Allès, B., et al. “Comparison of sociodemographic and nutritional characteristics between self-reported vegetarians, vegans, and meat-eaters from the NutriNet-Santé study.” Nutrients 9(9) (2017): 1023.
  • Pencharz, P.B., et al. “Recent developments in understanding protein needs: how much and what kind should we eat?” Applied Physiology, Nutrition, and Metabolism 41(5) (2016): 577–580.
  • Hou, Y., and G. Wu. “Nutritionally nonessential amino acids: a misnomer in nutritional sciences.” Advances in Nutrition 8(1) (2017): 137–139.
  • Pencharz, P.B., et al. “Recent developments in understanding protein needs: how much and what kind should we eat?” Applied Physiology, Nutrition, and Metabolism 41(5) (2016): 577–580.
  • Li, P., and G. Wu. “Roles of dietary glycine, proline, and hydroxyproline in collagen synthesis and animal growth.” Amino Acids 50(1) (2018): 29–38.
  • Qaradakhi, T., et al. “$e anti-in%ammatory e"ect of taurine on cardiovascular disease.” Nutrients 12(9) (2020): 2847; Chen, W., et al. “$e bene#cial e"ects of taurine in preventing metabolic syndrome.” Food & Function 7(4) (2016): 1849–1863; Seidel, U., et al. “Taurine: a regulator of cellular redox homeostasis and skeletal muscle function.” Molecular Nutrition & Food Research 63(16) (2019): 1800569; Chesney, R. W., et al. “Taurine and the renal system.” Journal of Biomedical Science 17(1) (2010): 1–10; L’Amoreaux, W.J., et al. “Taurine regulates insulin release from pancreatic beta cell lines.” Journal of Biomedical Science 17(1) (2010): 1–8.
  • Yamori, Y., et al. “Taurine in health and diseases: consistent evidence from experimental and epidemiological studies.” Journal of Biomedical Science 17(1) (2010): 1–14.
  • Dumoulin, J.C.M., et al. “Positive e"ect of taurine on preimplantation development of mouse embryos in vitro.” Reproduction 94(2) (1992): 373–380.
  • Mu, T., et al. “E"ect of taurine on reproductive hormone secretion in female rats.” Taurine 9 (2015): 449–456.
  • Sturman, J.A., et al. “Taurine de#ciency in the developing cat: persistence of the cerebellar external granule cell layer.” Journal of Neuroscience Research 13(3) (1985): 405–416; Mu, T., et al. “Taurine promotes in-vitro follicle development, oocyte maturation, fertilization and cleavage of rats.” Taurine 11 (2019): 197–203.
  • Jung, Y.-M., and M.-J. Choi. “Relation of taurine intake during pregnancy and newborns’ growth.” Taurine 11 (2019): 283–292; Holm, M.B., et al. “Placental release of taurine to both the maternal and fetal circulations in human term pregnancies.” Amino Acids 50(9) (2018): 1205–1214.
  • Laidlaw, S.A., et al. “$e taurine content of common foodstu"s.” Journal of Parenteral and Enteral Nutrition 14(2) (1990): 183–188.
  • Hou, Y., et al. “Dietary essentiality of ‘nutritionally non-essential amino acids’ for animals and humans.” Experimental Biology and Medicine 240(8) (2015): 997–1007.
  • Gao, H. “Amino acids in reproductive nutrition and health.” Amino Acids in Nutrition and Health (2020): 111–131.
  • Ibid.; Mu, T., et al. “Taurine promotes in-vitro follicle development, oocyte maturation, fertilization and cleavage of rats.” Taurine 11 (2019): 197–203.
  • Kane, K.K., et al. “E"ects of varying levels of undegradable intake protein on endocrine and metabolic function of young post-partum beef cows.” !eriogenology 57(9) (2002): 2179– 2191; Quesnel, H., et al. “Dietary protein restriction during lactation in primiparous sows with di"erent live weights at farrowing: II. Consequences on reproductive performance and interactions with metabolic status.” Reproduction Nutrition Development 45(1) (2005): 57–68; Gao, H. “Amino acids in reproductive nutrition and health,” Amino Acids in Nutrition and Health (2020): 111–131.
  • Clagett-Dame M, Knutson D. Vitamin A in reproduction and development. Nutrients. 2011 Apr;3(4):385-428. doi: 10.3390/nu3040385. Epub 2011 Mar 29. PMID: 22254103; PMCID: PMC3257687.
  • Tomoko Kawai, Noriyuki Yanaka, JoAnne S. Richards, Masayuki Shimada, De Novo-Synthesized Retinoic Acid in Ovarian Antral Follicles Enhances FSH-Mediated Ovarian Follicular Cell Differentiation and Female Fertility, Endocrinology, Volume 157, Issue 5, 1 May 2016, Pages 2160–2172, https://doi.org/10.1210/en.2015-2064
  • Institute of Medicine (US) Committee on Nutritional Status During Pregnancy and Lactation. Nutrition During Pregnancy: Part I Weight Gain: Part II Nutrient Supplements. Washington (DC): National Academies Press (US); 1990. 14, Iron Nutrition During Pregnancy. Available from: https://www.ncbi.nlm.nih.gov/books/NBK235217/
  • Gao Y, Sheng C, Xie RH, Sun W, Asztalos E, Moddemann D, Zwaigenbaum L, Walker M, Wen SW. New Perspective on Impact of Folic Acid Supplementation during Pregnancy on Neurodevelopment/Autism in the Offspring Children - A Systematic Review. PLoS One. 2016 Nov 22;11(11):e0165626. doi: 10.1371/journal.pone.0165626. PMID: 27875541; PMCID: PMC5119728.
  • Liu C, Liu C, Wang Q, Zhang Z. Supplementation of folic acid in pregnancy and the risk of preeclampsia and gestational hypertension: a meta-analysis. Arch Gynecol Obstet. 2018 Oct;298(4):697-704. doi: 10.1007/s00404-018-4823-4. Epub 2018 Jul 5. PMID: 29978414; PMCID: PMC6153594.
  • Chitayat D, Matsui D, Amitai Y, Kennedy D, Vohra S, Rieder M, Koren G. Folic acid supplementation for pregnant women and those planning pregnancy: 2015 update. J Clin Pharmacol. 2016 Feb;56(2):170-5. doi: 10.1002/jcph.616. Epub 2015 Nov 5. PMID: 26272218; PMCID: PMC4738404.

Alimentos a focar

  • Kiltz, Robert. BEBBIS for BABIES: A Diet to Help You on Your Journey to Conception (p. 31). Waterside Productions. Edição do Kindle.
  • Kiltz, Robert. BEBBIS for BABIES: A Diet to Help You on Your Journey to Conception (p. 40). Waterside Productions. Edição do Kindle.
  • Nichols, Lily; Hendrickson-Jack, Lisa. Real Food for Fertility: Prepare your body for pregnancy with preconception nutrition and fertility awareness. Fertility Food Publishing. Edição do Kindle.
  • Shaw, G.M. et al. “Periconceptional dietary intake of choline and betaine and neural tube defects in o"spring.” American Journal of Epidemiology 160(2) (2004): 102–109.
  • Visentin, C.E., et al. “Maternal choline status, but not fetal genotype, in%uences cord plasma choline metabolite concentrations.” J Nutr 145(7) (2015): 1491–1497.
  • Wallace, T.C., and V.L. Fulgoni. “Assessment of total choline intakes in the United States.” Journal of the American College of Nutrition 35(2) (2016): 108–112; Caudill, M.A., et al. “Elevating awareness and intake of choline: an essential nutrient for public health.” Nutrition Today 46 (2011): 235–241.
  • Wallace, T.C., and V.L. Fulgoni. “Usual choline intakes are associated with egg and protein food consumption in the United States.” Nutrients 9(8) (2017): 839.
  • Nehra, D., et al. “Prolonging the female reproductive lifespan and improving egg quality with dietary omega-3 fatty acids.” Aging Cell 11(6) (2012): 1046–1054; Cohen, J.T., et al. “A quantitative analysis of prenatal intake of n-3 polyunsaturated fatty acids and cognitive development.” American Journal of Preventive Medicine 29(4) (2005): 366–366; Lebold, K.M., and M.G. Traber. “Interactions between Į-tocopherol, polyunsaturated fatty acids, and lipoxygenases during embryogenesis.” Free Radical Biology and Medicine 66 (2014): 13–19.
  • West, A.A., et al. “Choline intake in%uences phosphatidylcholine DHA enrichment in nonpregnant women but not in pregnant women in the third trimester.” Am J Clin Nutr 97(4) (2013): 718–727.
  • $omas, H.R., et al. “Combined supplementation of choline and docosahexaenoic acid during pregnancy enhances neurodevelopment of fetal hippocampus.” Neurology Research International (2017).
  • Park, S., et al. “E"ect of zeaxanthin on porcine embryonic development during in vitro maturation.” Journal of Biomedical Research 31(2) (2017): 154; Bandariyan, E., et al. “$e e"ect of lutein and Urtica dioica extract on in vitro production of embryo and oxidative status in polycystic ovary syndrome in a model of mice.” BMC Complementary Medicine and !erapies 21(1) (2021): 1–11.
  • Chung, H.-Y., et al. “Lutein bioavailability is higher from lutein-enriched eggs than from supplements and spinach in men.” J Nutr 134(8) (2004): 1887–1893; Handelman, G.J., et al. “Lutein and zeaxanthin concentrations in plasma after dietary supplementation with egg yolk.” Am J Clin Nutr 70(2) (1999): 247–251; Yeum, K.-J., et al. “Human plasma carotenoid response to the ingestion of controlled diets high in fruits and vegetables.” Am J Clin Nutr 64(4) (1996): 594–602.
  • Karsten, H.D. et al. “Vitamins A, E and fatty acid composition of the eggs of caged hens and pastured hens.” Renewable Agriculture and Food Systems 25(1) (2010): 45–54. 13. Ratli", J., et al. “Consuming eggs for breakfast in%uences plasma glucose and ghrelin, while reducing energy intake during the next 24 hours in adult men.” Nutrition Research 30(2) (2010): 96–103.
  • Lemos, B.S., et al. “Consumption of up to three eggs per day increases dietary cholesterol and choline while plasma LDL cholesterol and trimethylamine n-oxide concentrations are not increased in a young, healthy population.” !e FASEB Journal 31(S1) (2017): 447.3; Zhuang, P., et al. “Egg and egg-sourced cholesterol consumption in relation to mortality: Findings from population-based nationwide cohort.” Clinical Nutrition 39(11) (2020): 3520–3527; Geiker, N.R.W., et al. “Egg consumption, cardiovascular diseases and type 2 diabetes.” European Journal of Clinical Nutrition (2017); Kishimoto, Y., et al. “Additional consumption of one egg per day increases serum lutein plus zeaxanthin concentration and lowers oxidized low-density lipoprotein in moderately hypercholesterolemic males.” Food Research International (2017); Fernandez, M.L., and M. Calle. “Revisiting dietary cholesterol recommendations: does the evidence support a limit of 300 mg/d?” Current Atherosclerosis Reports 12(6) (2010): 377–383.
  • Volek, J.S. et al. “Carbohydrate restriction has a more favorable impact on the metabolic syndrome than a low fat diet.” Lipids 44(4) (2009): 297–309.
  • Van Montfoort, A.P.A., et al. “Impact of maternal cholesterol metabolism on ovarian follicle development and fertility.” Journal of Reproductive Immunology 104 (2014): 32–36.
  • Price, W.A. (1979). Nutrition and Physical Degeneration: A Comparison of Primitive and Modern Diets and !eir E"ects. New York: Hoeber, 260.
  • Greenberg, J.A., and S.J. Bell. “Multivitamin supplementation during pregnancy: emphasis on folic acid and l-methylfolate.” Reviews in Obstetrics and Gynecology 4 (3–4) (2011): 126.
  • Duthie, Susan J., et al. “Impact of folate de#ciency on DNA stability.” !e Journal of Nutrition 132(8) (2002): 2444S–2449S; Menezo, Y., et al. “Folic acid, folinic acid, 5 methyl tetrahydrofolate supplementation for mutations that a"ect epigenesis through the folate and one-carbon cycles.” Biomolecules 12(2) (2022): 197; Hoek, J., et al. “Paternal folate status and sperm quality, pregnancy outcomes, and epigenetics: a systematic review and meta‐analysis.” Molecular Nutrition & Food Research 64(9) (2020): 1900696.
  • Banihani, S.A. “Vitamin B12 and semen quality.” Biomolecules 7(2) (2017): 42.
  • Chmurzynska, A. “Fetal programming: link between early nutrition, DNA methylation, and complex diseases.” Nutrition Reviews 68(2) (2010): 87–98; Park, H.S., et al. “Genetic polymorphisms of the cobalamin transport system are associated with idiopathic recurrent implantation failure.” Journal of Assisted Reproduction and Genetics 36(7) (2019): 1513– 1522; Yadav, U., et al. “Maternal biomarkers for early prediction of the neural tube defects pregnancies.” Birth Defects Research 113(7) (2021): 589–600.
  • Ibeh, N.C., et al. “Relationship between vitamin B12 de#ciency and infertility on women attending obstetrics and gynecological clinic at a tertiary hospital in South East, Nigeria.” Journal of Medical Laboratory Science 29(3) (2019): 1–7; Rezniko"-Etiévant, M.F., et al. “Low vitamin B12 level as a risk factor for very early recurrent abortion.” European Journal of Obstetrics & Gynecology and Reproductive Biology 104(2) (2002): 156–159; Bennett, M. “Vitamin B12 de#ciency, infertility and recurrent fetal loss.” !e Journal of Reproductive Medicine 46(3) (2001): 209–212.
  • Skowrońska, P., et al. “Follicular fat-soluble vitamins as markers of oocyte competency.” Systems Biology in Reproductive Medicine 66(2) (2020): 112–121; Khechumyan, LR, et al. “Role of the vitamin K-dependent protein periostin in predicting the e"ectiveness of an assisted reproductive technology program.” Obstetrics and Gynecology 7 (2017): 28–32.
  • Masterjohn, C. “Vitamin D toxicity rede#ned: vitamin K and the molecular mechanism.” Medical Hypotheses 68(5) (2007): 1026–1034.
  • Gannon, B.M., et al. “Vitamin A requirements in pregnancy and lactation.” Current Developments in Nutrition 4(10) (2020): nzaa142.
  • Rai, D., et al. “Nutritional status as assessed by nutrient intakes and biomarkers among women of childbearing age–is the burden of nutrient inadequacies growing in America?” Public Health Nutrition 18(9) (2015): 1658–1669.
  • Van den Berg, H., et al. “Evaluation of the e"ect of the use of vitamin supplements on vitamin A intake among (potentially) pregnant women in relation to the consumption of liver and liver products.” Eur J Obstet Gynecol Reprod Biol 66(1) (1996): 17–21.
  • Harrison, E.H. “Mechanisms involved in the intestinal absorption of dietary vitamin A and provitamin A carotenoids.” Biochimica et Biophysica Acta (BBA)-Molecular and Cell Biology of Lipids 1821(1) (2012): 70–77.
  • Russell, R.M. “$e vitamin A spectrum: from de#ciency to toxicity.” Am J Clin Nutr 71(4) (2000): 878–884.
  • Allen, L.H., and M. Haskell. “Estimating the potential for vitamin A toxicity in women and young children.” J Nutr 132(9) (2002): 2907S–2919S.
  • Beurskens, L.W.J.E., et al. “Retinol status of newborn infants is associated with congenital diaphragmatic hernia.” Pediatrics 126(4) (2010): 712–720; Wilson, J.G., et al. “An analysis of the syndrome of malformations induced by maternal vitamin A de#ciency: e"ects of restoration of vitamin A at various times during gestation.” American Journal of Anatomy 92(2) (1953): 189–217; Ross, S.A., et al. “Retinoids in embryonal development.” Physiological Reviews 80(3) (2000): 1021–1054; Niederreither, K., and P. Dollé. “Retinoic acid in development: towards an integrated view.” Nature Reviews Genetics 9(7) (2008): 541–553.
  • Wilson, J.G., et al. “An analysis of the syndrome of malformations induced by maternal vitamin A de#ciency. E"ects of restoration of vitamin A at various times during gestation.” American Journal of Anatomy 92(2) (1953): 189–217.
  • McGivern, M.R., et al. “Epidemiology of congenital diaphragmatic hernia in Europe: a register-based study.” Archives of Disease in Childhood: Fetal and Neonatal 100(2) (2015): F137–F144; Yang, W., et al. “Nutrient intakes in women and congenital diaphragmatic hernia in their o"spring.” Birth Defects Research Part A: Clinical and Molecular Teratology 82(3) (2008): 131–138; Greer, J.J., et al. “Etiology of congenital diaphragmatic hernia: the retinoid hypothesis.” Pediatric Research 53(5) (2003): 726–730.
  • Clagett-Dame, M., and D. Knutson. “Vitamin A in reproduction and development.” Nutrients 3(4) (2011): 385–428.
  • Li, H., et al. “Vitamin A de#ciency results in meiotic failure and accumulation of undi"erentiated spermatogonia in prepubertal mouse testis.” Biology of Reproduction 84(2) (2011): 336–341; $ompson, J.N., et al. “Vitamin A and reproduction in rats.” Proceedings of the Royal Society B 159(976) (1964): 510–535; Lamb, A.J., et al. “Induction of rapid, synchronous vitamin A de#ciency in the rat.” J Nutr 104(9) (1974): 1140–1148.
  • Hogarth, C.A., and M.D. Griswold. “$e key role of vitamin A in spermatogenesis.” !e Journal of Clinical Investigation 120(4) (2010): 956–962; Afeiche, M.C., et al. “Meat intake and reproductive parameters among young men.” Epidemiology 25(3) (2014): 323.
  • Clagett-Dame, M., and D. Knutson. “Vitamin A in reproduction and development.” Nutrients 3(4) (2011): 385–428; Talavera, F., and B.P. Chew. “Comparative role of retinol, retinoic acid and ȕ-carotene on progesterone secretion by pig corpus luteum in vitro.”Journal of Reproduction and Fertility 82(2) (1988): 611–615; $ompson, J.N., et al. “Vitamin A and reproduction in rats.” Proceedings of the Royal Society B 159(976) (1964): 510–535.
  • Whaley, S.L., et al. “In%uence of vitamin A injection before mating on oocyte development, follicular hormones, and ovulation in gilts fed high-energy diets.” Journal of Animal Science 78(6) (2000): 1598–1607; Ikeda, S., et al. “$e roles of vitamin A for cytoplasmic maturation of bovine oocytes.” Journal of Reproduction and Development 51(1) (2005): 23–35.
  • Kumar, SB, et al. “Iron de#ciency anemia: e(cacy and limitations of nutritional and comprehensive mitigation strategies.” Nutrients 14.14 (2022): 2976; da Cunha, M.S.B., et al. “E"ect of vitamin A supplementation on iron status in humans: a systematic review and meta-analysis.” Critical Reviews in Food Science and Nutrition 59(11) (2019): 1767–1781; Zimmermann, M.B. “Interactions between iron and vitamin A, ribo%avin, copper, and zinc in the etiology of anemia.” Nutritional Anemia (2007): 199.
  • Chavarro, J.E., et al. “Iron intake and risk of ovulatory infertility.” Obstetrics & Gynecology 108(5) (2006): 1145–1152; Cinemre, H., et al. “Hematologic e"ects of levothyroxine in iron-de#cient subclinical hypothyroid patients: a randomized, double-blind, controlled study.” !e Journal of Clinical Endocrinology & Metabolism 94(1) (2009): 151–156; Beckert, R.H., et al. “Maternal anemia and pregnancy outcomes: a population-based study.” Journal of Perinatology 39(7) (2019): 911–919; Skalnaya, M.G., et al. “Serum levels of copper, iron, and manganese in women with pregnancy, miscarriage, and primary infertility.” Journal of Trace Elements in Medicine and Biology 56 (2019): 124–130.
  • Uriu Adams, J.Y., et al. “In%uence of copper on early development: prenatal and postnatal considerations.” Biofactors 36(2) (2010): 136–152; Lee, J.K., et al. “Dietary iron intake in excess of requirements impairs intestinal copper absorption in Sprague Dawley rat dams, causing copper de#ciency in suckling pups.” Biomedicines 9(4) (2021): 338; Qin, X., et al. “Chronic overload of concentration-dependent iron exerts di"erent e"ects on ovarian function in C57BL/6J mice.” Biology of Reproduction (2021); Gabrielsen, J.S., et al. “Iron and a man’s reproductive health: the good, the bad, and the ugly.” Current Urology Reports 19(8) (2018): 1–7.
  • Skalnaya, M.G., et al. “Serum levels of copper, iron, and manganese in women with pregnancy, miscarriage, and primary infertility.” Journal of Trace Elements in Medicine and Biology 56 (2019): 124–130.
  • Grieger, J.A., et al. “Maternal selenium, copper and zinc concentrations in early pregnancy, and the association with fertility.” Nutrients 11(7) (2019): 1609.
  • Mintziori, G., et al. “Evidence for a manifold role of selenium in infertility.” Hormones 19(1) (2020): 55–59; Qazi, I.H., et al. “Impact of dietary selenium on modulation of expression of several non-selenoprotein genes related to key ovarian functions, female fertility, and proteostasis: a transcriptome-based analysis of the aging mice ovaries.” Biological Trace Element Research (2021): 1–16.
  • Mintziori, G., et al. “Evidence for a manifold role of selenium in infertility.” Hormones 19(1) (2020): 55–59.
  • Garner, T.B., et al. “Role of zinc in female reproduction.” Biology of Reproduction 104(5) (2021): 976–994; Fallah, A., et al. “Zinc is an essential element for male fertility: a review of Zn roles in men’s health, germination, sperm quality, and fertilization.” Journal of Reproduction & Infertility 19(2) (2018): 69.
  • Panth, P., et al. “A review of iodine status of women of reproductive age in the USA.” Biological Trace Element Research 188(1) (2019): 208–220. 48. Fazelian, S., et al. “Chromium supplementation and polycystic ovary syndrome: a systematic review and meta-analysis.” Journal of Trace Elements in Medicine and Biology 42 (2017): 92–96.
  • Wittemans, L.B.L., et al. “Assessing the causal association of glycine with risk of cardiometabolic diseases.” Nature Communications 10(1) (2019): 1–13; McCarty, M.F., et al. “Dietary glycine is rate-limiting for glutathione synthesis and may have broad potential for health protection.” Ochsner Journal 18(1) (2018): 81–87; Adeva-Andany, M., et al. “Insulin resistance and glycine metabolism in humans.” Amino Acids 50(1) (2018): 11– 27; Alves, A., et al. “Glycine contributes to the control of hepatic response to insulin by promoting mitochondrial-endoplasmic reticulum interactions.” Proceedings of the Nutrition Society 79(OCE2) (2020); Holwerda, A.M., and L.J.C. van Loon. “$e impact of collagen protein ingestion on musculoskeletal connective tissue remodeling: a narrative review.” Nutrition Reviews 80(6) (2022): 1497–1514.
  • Baltz, J.M., and C. Zhou. “Cell volume regulation in mammalian oocytes and preimplantation embryos.” Molecular Reproduction and Development 79(12) (2012): 821– 831.
  • Rasmussen, B.F., et al. “Glycine, a dispensable amino acid, is conditionally indispensable in late stages of human pregnancy.” J Nutr 151(2) (2021): 361–369.
  • Dunning, K.R., et al. “Lipids and oocyte developmental competence: the role of fatty acids and b-oxidation.” Reproduction 148(1) (2014): R15–R27; Zhou, X., et al. “E"ect of L-carnitine and/or L-acetyl-carnitine in nutrition treatment for male infertility: a systematic review.” Asia Paci#c Journal of Clinical Nutrition 16 (2007): 383–390.
  • Montjean, D., et al. “Carnitine content in the follicular %uid and expression of the enzymes involved in beta oxidation in oocytes and cumulus cells.” J Assist Reprod Genet 29(11) (2012): 1221–1225.
  • Maleki, V., et al. “Potential roles of carnitine in patients with polycystic ovary syndrome: a systematic review.” Gynecological Endocrinology 35(6) (2019): 463–469; Lati#an, S., et al. “E"ect of addition of l-carnitine in polycystic ovary syndrome (PCOS) patients with clomiphene citrate and gonadotropin resistant.” International Journal of Current Research and Academic Review 3(8) (2015): 469–76.
  • Dunning, K.R., and R.L. Robker. “$e role of L-carnitine during oocyte in vitro maturation: essential co-factor?” Animal Reproduction 14(3) (2018): 469–475.
  • Valckx, S.D.M., et al. “BMI-related metabolic composition of the follicular %uid of women undergoing assisted reproductive treatment and the consequences for oocyte and embryo quality.” Hum Reprod 27(12) (2012): 3531–3539.
  • Borum, P.R. “Carnitine homeostasis in humans.” Carnitine Metabolism and Human Nutrition (2014): 3–10.
  • Wyss, M., and R. Kaddurah-Daouk. “Creatine and creatinine metabolism.” Physiological Reviews 80(3) (2000): 1107–1213.
  • Muccini, A.M., et al. “Creatine metabolism in female reproduction, pregnancy and newborn health.” Nutrients 13(2) (2021): 490.
  • Umehara, T., et al. “Creatine enhances the duration of sperm capacitation: a novel factor for improving in vitro fertilization with small numbers of sperm.” Hum Reprod 33(6) (2018): 1117–1129; Fakih, H., et al. “Enhancement of human sperm motility and velocity in vitro: e"ects of calcium and creatine phosphate.” Fertil Steril 46(5) (1986): 938–944.
  • Ostojic, S.M., and S.C. Forbes. “Perspective: creatine, a conditionally essential nutrient: building the case.” Advances in Nutrition 13(1) (2022): 34–37.
  • Burke, D.G., et al. “E"ect of creatine and weight training on muscle creatine and performance in vegetarians.” Medicine & Science in Sports & Exercise 35(11) (2003): 1946–1955.
  • Ho"man, J.R., and M.J. Falvo. “Protein — which is best?” Journal of Sports Science and Medicine 3(3) (2004): 118–130.
  • Foster, M., et al. “Zinc status of vegetarians during pregnancy: a systematic review of observational studies and meta-analysis of zinc intake.” Nutrients 7(6) (2015): 4512–4525; Hunt, J.R. “Bioavailability of iron, zinc, and other trace minerals from vegetarian diets.” Am J Clin Nutr 78(3) (2003): 633S–639S.
  • Fathizadeh, S., et al. “Comparison of serum zinc concentrations and body antioxidant status between young women with premenstrual syndrome and normal controls: a casecontrol study.” International Journal of Reproductive BioMedicine 14(11) (2016): 699.
  • Houghton, S.C., et al. “Protein intake and the risk of premenstrual syndrome.” Public Health Nutrition 22(10) (2019): 1762.
  • Morris, M.S., et al. “Plasma pyridoxal 5’-phosphate in the US population: $e National Health and Nutrition Examination Survey, 2003–2004.” Am J Clin Nutr 2008, 87, 1446– 1454; Ho, C., et al. “Prevalence and predictors of low vitamin B6 status in healthy young adult women in Metro Vancouver.” Nutrients 8(9) (2016): 538.
  • McCarty, M.F., et al. “Dietary glycine is rate-limiting for glutathione synthesis and may have broad potential for health protection.” Ochsner Journal 18(1) (2018): 81–87.
  • Agarwal, A., et al. “$e e"ects of oxidative stress on female reproduction: a review.” Reproductive Biology and Endocrinology 10(1) (2012): 10–49; Ruder, E.H., et al. “Impact of oxidative stress on female fertility.” Current Opinion in Obstetrics & Gynecology 21(3) (2009): 219–222.
  • Sekhar, R.V., et al. “De#cient synthesis of glutathione underlies oxidative stress in aging and can be corrected by dietary cysteine and glycine supplementation.” Am J Clin Nutr 94(3) (2011): 847–853; Amores-Sánchez, M.I., et al. “Glutamine, as a precursor of glutathione, and oxidative stress.” Molecular Genetics and Metabolism 67(2) (1999): 100–105.
  • Li, W., et al. “Glycine regulates expression and distribution of Claudin-7 and ZO-3 proteins in intestinal porcine epithelial cells, 2.” J Nutr 146(5) (2016): 964–969; Bertrand, J., et al. “Glutamine restores tight junction protein claudin-1 expression in colonic mucosa of patients with diarrhea-predominant irritable bowel syndrome.” Journal of Parenteral and Enteral Nutrition 40(8) (2016): 1170–1176; Wang, B., et al. “L-glutamine enhances tight junction integrity by activating CaMK kinase 2–AMP-activated protein kinase signaling in intestinal porcine epithelial cells, 2.” J Nutr 146(3) (2016): 501–508.
  • Weber, A.M., et al. “Gynecologic history of women with in%ammatory bowel disease.” Obstetrics & Gynecology 86(5) (1995): 843–847; Saha, S., et al. “Menstrual cycle changes in women with in%ammatory bowel disease: a study from the ocean state Crohn’s and colitis area registry.” In$ammatory Bowel Diseases 20(3) (2014): 534–540.
  • Gaskins, A.J., et al. “Seafood intake, sexual activity, and time to pregnancy.” J Clin Endocrinol Metab 103(7) (2018): 2680–2688.
  • Nehra, D., et al. “Prolonging the female reproductive lifespan and improving egg quality with dietary omega-3 fatty acids.” Aging Cell 11(6) (2012): 1046–1054.
  • Mumford, S.L., et al. “Dietary fat intake and reproductive hormone concentrations and ovulation in regularly menstruating women.” Am J Clin Nutr 103(3) (2016): 868–877.
  • Al-Sa#, Z.A., et al. “Omega-3 fatty acid supplementation lowers serum FSH in normal weight but not obese women.” J Clin Endocrinol Metab 101(1) (2016): 324–333.
  • Gaskins, A.J., et al. “Seafood intake, sexual activity, and time to pregnancy.” J Clin Endocrinol Metab 103(7) (2018): 2680–2688; Braga, D.P.A.F., et al. “$e impact of food intake and social habits on embryo quality and the likelihood of blastocyst formation.” Reproductive Biomedicine Online 31(1) (2015): 30–38; Hammiche, F., et al. “Increased preconception omega-3 polyunsaturated fatty acid intake improves embryo morphology.” Fertil Steril 95(5) (2011): 1820–1823.
  • Hosseini, B., et al. “$e e"ect of omega-3 fatty acids, EPA, and/or DHA on male infertility: a systematic review and meta-analysis.” Journal of Dietary Supplements 16(2) (2019): 245–256.
  • Zhang, Z., et al. “Dietary intakes of EPA and DHA omega-3 fatty acids among US childbearing-age and pregnant women: an analysis of NHANES 2001–2014.” Nutrients 10(4) (2018): 416.
  • Baltaci, A.K., et al. “$e role of zinc in the endocrine system.” Pakistan Journal of Pharmaceutical Sciences 32(1) (2019).
  • Hunt, J.R. “Bioavailability of iron, zinc, and other trace minerals from vegetarian diets.” Am J Clin Nutr 78(3) (2003): 633S–639S.
  • Adalsteinsdottir, S., et al. “Insu(cient iodine status in pregnant women as a consequence of dietary changes.” Food & Nutrition Research 64 (2020).
  • Mathews, D.M., et al. “Iodine and fertility: do we know enough?” Hum Reprod 36(2) (2021): 265–274; Venturi, S. “Is there a role for iodine in breast diseases?” !e Breast 10(5) (2001): 379–382; O’Kane, S.M., et al. “Micronutrients, iodine status and concentrations of thyroid hormones: a systematic review.” Nutrition Reviews 76(6) (2018): 418–431.
  • Mills, J.L., et al. “Delayed conception in women with low-urinary iodine concentrations: a population-based prospective cohort study.” Hum Reprod 33(3) (2018): 426.
  • Sunde, R.A. (2012). “Selenium.” In A.C. Ross et al. Modern Nutrition in Health and Disease, 225–237. Philadelphia, PA: Lippincott Williams & Wilkins.
  • Kim, K., et al. “Dietary minerals, reproductive hormone levels and sporadic anovulation: associations in healthy women with regular menstrual cycles.” British Journal of Nutrition 120(1) (2018): 81–89.
  • Fallon, N., and S.A. Dillon. “Low intakes of iodine and selenium amongst vegan and vegetarian women highlight a potential nutritional vulnerability.” Frontiers in Nutrition 7 (2020): 72.
  • Ralston, N.V.C., and L.J. Raymond. “Dietary selenium’s protective e"ects against methylmercury toxicity.” Toxicology 278(1) (2010): 112–123.
  • U.S. Food & Drug Administration. Advice about Eating Fish. https://www.fda.gov/food/ consumers/advice-about-eating-#sh. Accessed June 14, 2021.
  • Burger, J., and M. Gochfeld. “Mercury and selenium levels in 19 species of saltwater #sh from New Jersey as a function of species, size, and season.” Science of the Total Environment 409(8) (2011): 1418–1429.
  • Chevrier, C., et al. “Organochlorine pesticides, polychlorinated biphenyls, seafood consumption, and time-to-pregnancy.” Epidemiology (2013): 251–260.
  • Moza"arian, D., and E.B. Rimm. “Fish intake, contaminants, and human health: evaluating the risks and the bene#ts.” JAMA 296(15) (2006): 1885–1899.
  • Cabello, F.C., et al. “Aquaculture as yet another environmental gateway to the development and globalisation of antimicrobial resistance.” !e Lancet Infectious Diseases 16(7) (2016): e127–e133; Conti, G.O., et al. “Determination of illegal antimicrobials in aquaculture feed and #sh: an ELISA study.” Food Control 50 (2015): 937–941.
  • Hossain, M.A. “Fish as source of n-3 polyunsaturated fatty acids (PUFAs), which one is better: farmed or wild?” Advance Journal of Food Science and Technology 3(6) (2011): 455–466.
  • United States Environmental Protection Agency. Advisories and Technical Resources for Fish and Shell#sh Consumption. https://www.epa.gov/#sh-tech. Accessed June 14, 2021; United States Environmental Protection Agency. Fish Tissue Data Collected by States for State Fish Advisories. https://#shadvisoryonline.epa.gov/FishTissue.aspx. Accessed June 14, 2021
  • Environmental Working Group. EWG’s Consumer Guide to Seafood. https://www.ewg.org/ consumer-guides/ewgs-consumer-guide-seafood. Accessed June 14, 2021.
  • Wise, L.A., et al. “$e association between seafood intake and fecundability: Analysis from two prospective studies.” Nutrients 12(8) (2020): 2276.
  • Kim, K., et al. “Dairy food intake is associated with reproductive hormones and sporadic anovulation among healthy premenopausal women.” J Nutr 147(2) (2017): 218–226.
  • Moslehi, N., et al. “Do dietary intakes in%uence the rate of decline in anti-Mullerian hormone among eumenorrheic women? A population-based prospective investigation.” Nutrition Journal 18(1) (2019): 1–9
  • Chavarro, J.E., et al. “A prospective study of dairy foods intake and anovulatory infertility.” Hum Reprod 22(5) (2007): 1340–1347; Afeiche, M.C., et al. “Dairy intake in relation to in vitro fertilization outcomes among women from a fertility clinic.” Hum Reprod 31(3) (2016): 563–571.
  • Drewnowski, A. “$e contribution of milk and milk products to micronutrient density and a"ordability of the US diet.” Journal of the American College of Nutrition 30(Suppl.5) (2011): 422S–428S.
  • Mandatori, D., et al. “$e dual role of vitamin K2 in “bone-vascular crosstalk”: opposite e"ects on bone loss and vascular calci#cation.” Nutrients 13.4 (2021): 1222.
  • Choi, H.J. et al. “Vitamin K2 supplementation improves insulin sensitivity via osteocalcin metabolism: a placebo-controlled trial.” Diabetes Care 34(9) (2011): e147–e147.
  • Karamzad, N., et al. “A systematic review on the mechanisms of vitamin K e"ects on the complications of diabetes and prediabetes.” BioFactors 46(1) (2020): 21–37.
  • Rivlin, R.S. (2010). “Ribo%avin.” In P.M. Coates et al. (eds.), Encyclopedia of Dietary Supplements, 691–699. London: Informa Healthcare.
  • Ocal, P., et al. “$e association between homocysteine in the follicular %uid with embryo quality and pregnancy rate in assisted reproductive techniques.” J Assist Reprod Genet 29(4) (2012): 299–304; Nelen, W.L.D.M., et al. “Maternal homocysteine and chorionic vascularization in recurrent early pregnancy loss.” Hum Reprod 15(4) (2000): 954–960.
  • “Iodine: Fact Sheet for Health Professionals.” National Institutes of Health. June 24, 2011, https://ods.od.nih.gov/factsheets/Iodine-HealthProfessional/.
  • Ahtesh, F.B., et al. “Anti-hypertensive peptides released from milk proteins by probiotics.” Maturitas 115 (2018): 103–109; Oak, S.J., and R. Jha. “$e e"ects of probiotics in lactose intolerance: a systematic review.” Critical Reviews in Food Science and Nutrition 59(11) (2019): 1675–1683.
  • Warinner, C., et al. “Direct evidence of milk consumption from ancient human dental calculus.” Scienti#c Reports 4 (2014): 7104.
  • Elgersma, A., et al. “Modifying milk composition through forage.” Animal Feed Science and Technology 131(3) (2006): 207–225.
  • Calderón, F., et al. “Variations in carotenoids, vitamins A and E, and color in cow’s plasma and milk following a shift from hay diet to diets containing increasing levels of carotenoids and vitamin E.” Journal of Dairy Science 90(12) (2007): 5651–5664; Nozière, P., et al. “Variations in carotenoids, fat-soluble micronutrients, and color in cows’ plasma and milk following changes in forage and feeding level.” Journal of Dairy Science 89(7) (2006): 2634–2648.
  • Hulshof, P.J.M., et al. “Variation in retinol and carotenoid content of milk and milk products in the Netherlands.” Journal of Food Composition and Analysis 19(1) (2006): 67–75.
  • Croissant, A.E., et al. “Chemical properties and consumer perception of %uid milk from conventional and pasture-based production systems.” Journal of Dairy Science 90(11) (2007): 4942–4953; Staszak, E. “Conjugated linoleic acid (CLA) content of milk from cows fed di"erent diets.” Folia Biologica 53(4) (2005): 103–106.
  • Smit, L.A., et al. “Conjugated linoleic acid in adipose tissue and risk of myocardial infarction.” Am J Clin Nutr 92(1) (2010): 34–40; Bhattacharya, A., et al. “Biological e"ects of conjugated linoleic acids in health and disease.” !e Journal of Nutritional Biochemistry 17(12) (2006): 789–810; Gaullier, J.-M., et al. “Conjugated linoleic acid supplementation for 1 y reduces body fat mass in healthy overweight humans.” Am J Clin Nutr 79(6) (2004): 1118–1125.
  • U.S. Department of Agriculture. Organic Livestock Requirements. https://www.ams.usda. gov/sites/default/#les/media/Organic%20Livestock%20Requirements.pdf. Accessed July 31, 2021.
  • Welsh, J.A., et al. “Production-related contaminants (pesticides, antibiotics and hormones) in organic and conventionally produced milk samples sold in the USA.” Public Health Nutrition 22(16) (2019): 2972–2980.
  • Van Montfoort, A.P.A., et al. “Impact of maternal cholesterol metabolism on ovarian follicle development and fertility.” Journal of Reproductive Immunology 104 (2014): 32–36.
  • Chavarro, J.E., et al. “A prospective study of dairy foods intake and anovulatory infertility.” Hum Reprod 22(5) (2007): 1340–1347.
  • Jianqin, S., et al. “E"ects of milk containing only A2 beta casein versus milk containing both A1 and A2 beta casein proteins on gastrointestinal physiology, symptoms of discomfort, and cognitive behavior of people with self-reported intolerance to traditional cows’ milk.” Nutrition Journal 15(1) (2015): 35.
  • Pal, S., et al. “Milk intolerance, beta-casein and lactose.” Nutrients 7(9) (2015): 7285– 7297.
  • Oliveira, L.S.M., et al. “Do non-bovine domestic animals produce A2 milk? An in silico analysis.” Animal Biotechnology (2021): 1–3.
  • De Noni, I. “Release of ȕ-casomorphins 5 and 7 during simulated gastro-intestinal digestion of bovine ȕ-casein variants and milk-based infant formulas.” Food Chemistry 110(4) (2008): 897–903.
  • Woodford, K. (2009). Devil in the Milk: Illness, Health and the Politics of A1 and A2 Milk. Hartford, VT: Chelsea Green Publishing.
  • Kay, S.-I.S., et al. “Bene#cial e"ects of milk having A2 ȕ-casein protein: myth or reality?” J Nutr 151(5) (2021): 1061–1072; Sheng, X., et al. “E"ects of conventional milk versus milk containing only A2 ȕ-casein on digestion in Chinese children: a randomized study.” Journal of Pediatric Gastroenterology and Nutrition 69(3) (2019): 375.
  • Olsen, S.J., et al. “Multidrug-resistant Salmonella Typhimurium infection from milk contaminated after pasteurization.” Emerging Infectious Diseases 10(5) (2004): 932–935; Ryan, C.A., et al. “Massive outbreak of antimicrobial-resistant salmonellosis traced to pasteurized milk.” JAMA 258 (1987): 3269–3274.
  • Berge, A.C., and T. Baars. “Raw milk producers with high levels of hygiene and safety.” Epidemiology & Infection 148 (2020).
  • Scallan, E., et al. “Foodborne illness acquired in the United States—major pathogens.” Emerging Infectious Diseases 17(1) (2011).
  • D’amico, D.J., and C.W. Donnelly. “Microbiological quality of raw milk used for smallscale artisan cheese production in Vermont: e"ect of farm characteristics and practices.” Journal of Dairy Science 93(1) (2010): 134–147.
  • Raikos, V. “E"ect of heat treatment on milk protein functionality at emulsion interfaces: a review.” Food Hydrocolloids 24(4) (2010): 259–265; Vasbinder, Astrid J., and C.G. De Kruif. “Casein–whey protein interactions in heated milk: the in%uence of pH.” International Dairy Journal 13(8) (2003): 669–677.
  • Brun, L.R., et al. “Regulation of intestinal calcium absorption by luminal calcium content: role of intestinal alkaline phosphatase.” Molecular Nutrition & Food Research 58(7) (2014): 1546–1551; Seiquer, I., et al. “Assessing the e"ects of severe heat treatment of milk on calcium bioavailability: in vitro and in vivo studies.” Journal of Dairy Science 93(12) (2010): 5635–5643.
  • Li, N., et al. “Variation in raw milk microbiota throughout 12 months and the impact of weather conditions.” Scienti#c Reports 8(1) (2018): 2371.
  • Waser, M., et al. “Inverse association of farm milk consumption with asthma and allergy in rural and suburban populations across Europe.” Clinical & Experimental Allergy 37(5) (2007): 661–670; Loss, Georg, et al. “$e protective e"ect of farm milk consumption on childhood asthma and atopy: the GABRIELA study.” Journal of Allergy and Clinical Immunology 128(4) (2011): 766–773.
  • Wiking, L., and J.A. Dickow. “E"ect of homogenization temperature and pressure on lipoprotein lipase activity and free fatty acids accumulation in milk.” Food and Nutrition 4 (2013): 101–108; Michalski, M. C., and C. Januel. “Does homogenization a"ect the human health properties of cow’s milk?” Trends in Food Science & Technology 17(8) (2006): 423–437.
  • Kanner, J. “Dietary advanced lipid oxidation endproducts are risk factors to human health.” Molecular Nutrition & Food Research 51(9) (2007): 1094–1101; Staprans, I., et al. “$e role of dietary oxidized cholesterol and oxidized fatty acids in the development of atherosclerosis.” Molecular Nutrition & Food Research 49(11) (2005): 1075–1082.
  • Prajapati, J.B., and B.M. Nair. (2003). “$e history of fermented foods.” In Fermented Functional Foods, 1–25. Boca Raton, Florida: CRC Press.
  • Manoury, E., et al. “Quantitative measurement of vitamin K2 (menaquinones) in various fermented dairy products using a reliable high-performance liquid chromatography method.” Journal of Dairy Science 96(3) (2013): 1335–1346; Hernández Ledesma, B., et al. “Identi#cation of antioxidant and ACE inhibitory peptides in fermented milk.” Journal of the Science of Food and Agriculture 85(6) (2005): 1041–1048.
  • Ahtesh, F.B., et al.”Anti-hypertensive peptides released from milk proteins by probiotics.” Maturitas 115 (2018): 103–109; Hernández Ledesma, B., et al. “Identi#cation of antioxidant and ACE inhibitory peptides in fermented milk.” Journal of the Science of Food and Agriculture 85(6) (2005): 1041–1048.
  • Thiele, C., et al. “Gluten hydrolysis and depolymerization during sourdough fermentation.” Journal of Agricultural and Food Chemistry 52(5) (2004): 1307–1314; Lopez, H.W., et al. “Prolonged fermentation of whole wheat sourdough reduces phytate level and increases soluble magnesium.” Journal of Agricultural and Food Chemistry 49(5) (2001): 2657–2662.
  • Scazzina, F., et al. “Sourdough bread: starch digestibility and postprandial glycemic response.” Journal of Cereal Science 49(3) (2009): 419–421; Demirkesen-Bicak, H., et al. “E"ect of di"erent fermentation conditions on estimated glycemic index, in vitro starch digestibility, and textural and sensory properties of sourdough bread.” Foods 10(3) (2021): 514.
  • Petroski, W., and D.M. Minich. “Is there such a thing as “anti-nutrients”? A narrative review of perceived problematic plant compounds.” Nutrients 12(10) (2020): 2929.
  • Guarner, F., and J.-R. Malagelada. “Gut %ora in health and disease.” !e Lancet 361(9356) (2003): 512–519; Jandhyala, S.M., et al. “Role of the normal gut microbiota.” World Journal of Gastroenterology 21(29) (2015): 8787.
  • Wang, Z., et al. “Probiotics for the treatment of bacterial vaginosis: A meta-analysis.” International Journal of Environmental Research and Public Health 16(2)0 (2019): 3859; Superti, F., and F. De Seta. “Warding o" recurrent yeast and bacterial vaginal infections: lactoferrin and lactobacilli.” Microorganisms 8(1) (2020): 130; Chauncey, K.B., et al. “E"ects of yogurt with and without active cultures on vaginal candidal infection in women with diabetes mellitus.” Journal of the American Dietetic Association 99(9) (1999): A100.
  • Yoon, K.Y., et al. “Production of probiotic cabbage juice by lactic acid bacteria.” Bioresource Technology 97(12) (2006): 1427–1430; Hikmetoglu, M., et al. “Changes in carbohydrate pro#le in ke#r fermentation.” Bioactive Carbohydrates and Dietary Fibre 23 (2020): 100220; Wilkins, T., and J. Sequoia. “Probiotics for gastrointestinal conditions: a summary of the evidence.” American Family Physician 96(3) (2017): 170–178.
  • Chen, Y., et al. “Yogurt improves insulin resistance and liver fat in obese women with nonalcoholic fatty liver disease and metabolic syndrome: a randomized controlled trial.” Am J Clin Nutr 109(6) (2019): 1611–1619; Goel, A.K., et al. “Probiotics: Microbial therapy for health modulation.” Defence Science Journal 56(4) (2006): 513.
  • Mulak, A., et al. “Sex hormones in the modulation of irritable bowel syndrome.” World Journal of Gastroenterology 20(10) (2014): 2433.
  • Mathur, R., et al. “Polycystic ovary syndrome is associated with an increased prevalence of irritable bowel syndrome.” Digestive Diseases and Sciences 55(4) (2010): 1085–1089; Tremellen, K., and K. Pearce. “Dysbiosis of gut microbiota (DOGMA)–a novel theory for the development of polycystic ovarian syndrome.” Medical Hypotheses 79(1) (2012): 104–112.
  • Looijer-van Langen, M., et al. “Estrogen receptor-ȕ signaling modulates epithelial barrier function.” American Journal of Physiology: Gastrointestinal and Liver Physiology 300(4) (2011): G621–G626.
  • Dahiya, D., and P.S. Nigam. “Probiotics, prebiotics, synbiotics, and fermented foods as potential biotics in nutrition improving health via microbiome-gut-brain axis.” Fermentation 8(7) (2022): 303.
  • Laanpere, M., et al. “Folate-mediated one-carbon metabolism and its e"ect on female fertility and pregnancy viability.” Nutrition Reviews 68(2) (2010): 99–113.
  • Zabaleta, M.E.. “Mediterranean diet: Woman fertility and pregnancy.” Mediterranean Journal of Nutrition and Metabolism 13(1) (2020): 101–111.
  • Luck, M.R., et al. “Ascorbic acid and fertility.” Biology of Reproduction 52(2) (1995): 262–266.
  • Sharaf, A., and N. Gomaa. “Progesterone-like e"ect of vitamins.” Qualitas Plantarum et Materiae Vegetabiles 21(3) (1972): 159–164;Leon Israel, S., and David R. Meranze. “Progesterone-like e"ect of ascorbic acid (vitamin C) on the endometrium.” Endocrinology 29(2) (1941): 210–214.
  • Bhardwaj, J.K., et al. “Ameliorating e"ects of natural antioxidant compounds on female infertility: a review.” Reproductive Sciences 28(5) (2021): 1227–1256.
  • Chowdhury, M.M.R., et al. “Improved developmental competence in embryos treated with lycopene during in vitro culture system.” Molecular Reproduction and Development 85(1) (2018): 46–61; Zini, A., et al. “Lycopene supplementation in vitro can protect human sperm deoxyribonucleic acid from oxidative damage.” Fertility and Sterility 94(3) (2010): 1033–1036.
  • Fowke, J.H., et al. “Brassica vegetable consumption shifts estrogen metabolism in healthy postmenopausal women.” Cancer Epidemiology and Prevention Biomarkers 9(8) (2000): 773–779.
  • Babakhani, K., et al. “Comparison of vegetable intake in nurses with and without premenstrual syndrome: A case-control study.” Shiraz E-Medical Journal 21(2) (2020).
  • Zhang, D., et al. “Supplement of betaine into embryo culture medium can rescue injury e"ect of ethanol on mouse embryo development.” Scienti#c Reports 8(1) (2018): 1–13; Kwong, W.Y., et al. “Endogenous folates and single-carbon metabolism in the ovarian follicle, oocyte and pre-implantation embryo.” Reproduction 139(4) (2010): 705.
  • Harris, H.R., et al. “Fruit and vegetable consumption and risk of endometriosis.” Hum Reprod 33(4) (2018): 715–727.
  • Aminirad, O., et al. “In%uence of pomegranate juice on sperm parameters and fertility in mice.” Hormozgan Medical Journal 13(3) (2009): 182–188.
  • Esmaeilinezhad, Z., et al. “$e e"ect of synbiotics pomegranate juice on cardiovascular risk factors in PCOS patients: a randomized, triple-blinded, controlled trial.” Journal of Endocrinological Investigation 43(4) (2020): 539–548; Abedini, M., et al. “$e e"ect of concentrated pomegranate juice consumption on risk factors of cardiovascular diseases in women with polycystic ovary syndrome: a randomized controlled trial.” Phytotherapy Research 35(1) (2021): 442–451.
  • Lee, Y.H., et al. “Welsh onion root (Allium #stulosum) restores ovarian functions from letrozole induced-polycystic ovary syndrome.” Nutrients 10(10) (2018): 1430.
  • Brown, M.J. et al. “Carotenoid bioavailability is higher from salads ingested with full-fat than with fat-reduced salad dressings as measured with electrochemical detection.” Am J Clin Nutr 80(2) (2004): 396–403.
  • Fabbri, A.D.T., and G.A. Crosby. “A review of the impact of preparation and cooking on the nutritional quality of vegetables and legumes.” International Journal of Gastronomy and Food Science 3 (2016): 2–11.
  • Baker, B.P., et al. “Pesticide residues in conventional, integrated pest management (IPM)- grown and organic foods: insights from three US data sets.” Food Additives & Contaminants 19(5) (2002): 427–446; Fagan, J., et al. “Organic diet intervention signi#cantly reduces urinary glyphosate levels in US children and adults.” Environmental Research 189 (2020): 109898.
  • Rickman, J.C., et al. “Nutritional comparison of fresh, frozen and canned fruits and vegetables. Part 1. Vitamins C and B and phenolic compounds.” Journal of the Science of Food and Agriculture 87(6) (2007): 930–944.
  • Terry, J. “$e major electrolytes: sodium, potassium, and chloride.” Journal of Intravenous Nursing 17(5) (1994): 240–247; Terry, J. “$e other electrolytes: magnesium, calcium, and phosphorus.” Journal of Intravenous Nursing 14(3) (1991): 167–176. 174. Ingram, M., and A.G. Kitchell. “Salt as a preservative for foods.” International Journal of Food Science & Technology 2(1) (1967): 1–15.
  • Dullo, P., and N. Vedi. “Changes in serum calcium, magnesium and inorganic phosphorus levels during di"erent phases of the menstrual cycle.” Journal of Human Reproductive Sciences 1(2) (2008): 77.
  • Fathizadeh, N., et al. “Evaluating the e"ect of magnesium and magnesium plus vitamin B6 supplement on the severity of premenstrual syndrome.” Iranian Journal of Nursing and Midwifery Research 15(suppl1) (2010): 401; Quaranta, S., et al. “Pilot study of the e(cacy and safety of a modi#ed-release magnesium 250mg tablet (Sincromag®) for the treatment of premenstrual syndrome.” Clinical Drug Investigation 27(1) (2007): 51–58; $ys-Jacobs, S. “Micronutrients and the premenstrual syndrome: the case for calcium.” Journal of the American College of Nutrition 19(2) (2000): 220–227; Shobeiri, F., et al. “E"ect of calcium on premenstrual syndrome: a double-blind randomized clinical trial.” Obstetrics & Gynecology Science 60(1) (2017): 100–105.
  • Kim, K., et al. “Dietary minerals, reproductive hormone levels and sporadic anovulation: associations in healthy women with regular menstrual cycles.” Br J Nutr 120(1) (2018): 81–89.
  • Gold, E.B., et al. “Diet and lifestyle factors associated with premenstrual symptoms in a racially diverse community sample: Study of Women’s Health Across the Nation (SWAN).” Journal of Women’s Health 16(5) (2007): 641–656.
  • Janowsky, D.S., et al. “Correlations between mood, weight, and electrolytes during the menstrual cycle: a renin-angiotensin-aldosterone hypothesis of premenstrual tension.” Psychosomatic Medicine (1973); White, C.P., et al. “Fluid retention over the menstrual cycle: 1–year data from the prospective ovulation cohort.” Obstetrics and Gynecology International 2011 (2011).
  • Funder, J.W. “Aldosterone research: 65 Years, and counting.” Vitamins and Hormones 109 (2019): 1–15.
  • Kim, J.-M., et al. “Role of potassium channels in female reproductive system.” Obstetrics & Gynecology Science 63(5) (2020): 565; Milan, R., et al. “Contribution of potassium in human placental steroidogenesis.” Placenta 31(10) (2010): 860–866.
  • Gildea, J.J. et al. “A linear relationship between the ex-vivo sodium mediated expression of two sodium regulatory pathways as a surrogate marker of salt sensitivity of blood pressure in exfoliated human renal proximal tubule cells: the virtual renal biopsy.” Clinica Chimica Acta 421 (2013): 236–242.
  • Mente, A., et al. “Sodium intake and health: what should we recommend based on the current evidence?” Nutrients 13(9) (2021): 3232.
  • Keys, A., et al. “$e diet and 15-year death rate in the seven countries study.” American Journal of Epidemiology 124(6) (1986): 903–915; Willett, W.C., et al. “Mediterranean diet pyramid: a cultural model for healthy eating.” Am J Clin Nutr 61(6) (1995): 1402S–1406S; Urquiaga, I., et al. “Origin, components and mechanisms of action of the Mediterranean diet.” Revista Médica de Chile 145(1) (2017): 85–95.
  • Martinez-Lacoba, R., et al. “Mediterranean diet and health outcomes: a systematic metareview.” European Journal of Public Health 28(5) (2018): 955–961.
  • United Nations Environment Programme. “$e Mediterranean Marine and Coastal Environment.” https://www.medqsr.org/mediterranean-marine-and-coastal-environment. Accessed April 24, 2022.
  • Grigg, D. “Food consumption in the Mediterranean region.” Tijdschrift voor economische en sociale geogra#e 90(4) (1999): 391–409.
  • Moyer-Nocchi, K. (2020). “$e Mediterranean Diet: $e Deconstruction of a Modern Mythology.” In R. Iannacito-Provenzano and G. Scardellato. Italian Foodways Worldwide: !e Dispersal of Italian Cuisine(s). Welland, Ontario: Soleil Publishing.
  • Uzhova, I., and J.L. Penalvo. “Mediterranean diet and cardio-metabolic health: what is the role of meat?” Eur J Clin Nutr 72(1) (2019): 4–7; Saba, A., and R. Di Natale. “A study on the mediating role of intention in the impact of habit and attitude on meat consumption.” Food Quality and Preference 10(1) (1998): 69–77.
  • Prajapati, J.B., and B.M.. Nair. (2003). “$e history of fermented foods.” In Fermented Functional Foods. Boca Raton, FL: CRC Press, 1–25.
  • Uzhova, I., and J.L. Penalvo. “Mediterranean diet and cardio-metabolic health: what is the role of meat?” European Journal of Clinical Nutrition 72(1) (2019): 4–7.
  • Moyer-Nocchi, K. (2020). “$e Mediterranean Diet: $e Deconstruction of a Modern Mythology.” In R. Iannacito-Provenzano and G. Scardellato. Italian Foodways Worldwide: !e Dispersal of Italian Cuisine(s). Welland, Ontario: Soleil Publishing. 193. Teicholz, N. (2014). !e Big Fat Surprise: Why Butter, Meat and Cheese Belong in a Healthy Diet. New York: Simon & Schuster.
  • You, W., et al. “Total meat intake is associated with life expectancy: a cross-sectional data analysis of 175 contemporary populations.” International Journal of General Medicine 15 (2022): 1833.
  • Moyer-Nocchi, K. (2020). “$e Mediterranean Diet: $e Deconstruction of a Modern Mythology.” In R. Iannacito-Provenzano and G. Scardellato. Italian Foodways Worldwide: !e Dispersal of Italian Cuisine(s). Welland, Ontario: Soleil Publishing.
  • Italian Connection. “Fresh Raw Milk – Regional Foods Of Italy.” https://italian-connection.com/italian-food-culture/italian-dop-food/. Accessed April 25, 2022; Traversi, D., et al. “Environmental advances due to the integration of food industries and anaerobic digestion for biogas production: perspectives of the Italian milk and dairy product sector.” Bioenergy Research 6(3) (2013): 851–863.
  • Moyer-Nocchi, K. (2020). “$e Mediterranean Diet: $e Deconstruction of a Modern Mythology.” In R. Iannacito-Provenzano and G. Scardellato. Italian Foodways Worldwide: !e Dispersal of Italian Cuisine(s). Welland, Ontario: Soleil Publishing.
  • Willett, W.C., et al. “Mediterranean diet pyramid: a cultural model for healthy eating.” Am J Clin Nutr 61(6) (1995): 1402S–406S. 200. Juul, F., et al. “Ultra-processed food consumption and excess weight among US adults.” Br J Nutr 120(1) (2018): 90–100.
  • Martinez-Lacoba, R., et al. “Mediterranean diet and health outcomes: a systematic metareview.” European Journal of Public Health 28(5) (2018): 955–961.
  • Poulimeneas, D., et al. “Exploring the relationship between the Mediterranean diet and weight loss maintenance: $e MedWeight study.” Br J Nutr 124(8) (2020): 874– 880; Barrea, L., et al. “Adherence to the mediterranean diet, dietary patterns and body composition in women with polycystic ovary syndrome (PCOS).” Nutrients 11(10) (2019): 2278; Karayiannis, D., et al. “Adherence to the Mediterranean diet and IVF success rate among non-obese women attempting fertility.” Hum Reprod 33(3) (2018): 494–502; Sun, H., et al. “Mediterranean diet improves embryo yield in IVF: a prospective cohort study.” Reprod Biol Endocrinol 17(1) (2019): 1–7.
  • Salas-Huetos, A., et al. “Adherence to the Mediterranean diet is positively associated with sperm motility: A cross-sectional analysis.” Scienti#c Reports 9(1) (2019): 1–8; Ricci, E., et al. “Mediterranean diet and the risk of poor semen quality: cross sectional analysis of men referring to an Italian Fertility Clinic.” Andrology 7(2) (2019): 156–162; Caruso, P., et al. “E"ects of Mediterranean diet on semen parameters in healthy young adults: a randomized controlled trial.” Minerva Endocrinologica 45(4) (2020): 280–287.
  • O’Connor, L.E., et al. “A Mediterranean-style eating pattern with lean, unprocessed red meat has cardiometabolic bene#ts for adults who are overweight or obese in a randomized, crossover, controlled feeding trial.” Am J Clin Nutr 108(1) (2018): 33–40; Black, L.J., et al. “A higher Mediterranean diet score, including unprocessed red meat, is associated with reduced risk of central nervous system demyelination in a case-control study of Australian adults.” J Nutr 149(8) (2019): 1385–1392.
  • Grigg, D. “Food consumption in the Mediterranean region.” Tijdschrift voor economische en sociale geogra#e 90(4) (1999): 391–409.
  • Pérez-Guisado, J., et al. “Spanish ketogenic Mediterranean diet: a healthy cardiovascular diet for weight loss.” Nutrition Journal 7(1) (2008): 1–7.
  • Mei, S., et al. “Mediterranean diet combined with a low-carbohydrate dietary pattern in the treatment of overweight polycystic ovary syndrome patients.” Frontiers in Nutrition 9 (2022).
  • Andrews, M.A., et al. “Dietary factors and luteal phase de#ciency in healthy eumenorrheic women.” Human Reproduction 30(8) (2015): 1942–1951; Gaskins, A.J., et al. “Adherence to a Mediterranean diet and plasma concentrations of lipid peroxidation in premenopausal women.” Am J Clin Nutr 92(6) (2010): 1461–1467.
  • Jahangirifar, M., et al. “Dietary patterns and the outcomes of assisted reproductive techniques in women with primary infertility: a prospective cohort study.” International Journal of Fertility & Sterility 12(4) (2019): 316.
  • Qazi IH, Angel C, Yang H, Pan B, Zoidis E, Zeng CJ, Han H, Zhou GB. Selenium, Selenoproteins, and Female Reproduction: A Review. Molecules. 2018 Nov 22;23(12):3053. doi: 10.3390/molecules23123053. PMID: 30469536; PMCID: PMC6321086.
  • Sochol KM, Johns TS, Buttar RS, Randhawa L, Sanchez E, Gal M, Lestrade K, Merzkani M, Abramowitz MK, Mossavar-Rahmani Y, Melamed ML. The Effects of Dairy Intake on Insulin Resistance: A Systematic Review and Meta-Analysis of Randomized Clinical Trials. Nutrients. 2019 Sep 17;11(9):2237. doi: 10.3390/nu11092237. PMID: 31533272; PMCID: PMC6769921.
  • Mendelian Randomization of Dairy Consumption Working Group; CHARGE consortium. Dairy Intake and Body Composition and Cardiometabolic Traits among Adults: Mendelian Randomization Analysis of 182041 Individuals from 18 Studies. Clin Chem. 2019 Jun;65(6):751-760. doi: 10.1373/clinchem.2018.300335. PMID: 31138550; PMCID: PMC6818094.
  • Stonehouse W, Wycherley T, Luscombe-Marsh N, Taylor P, Brinkworth G, Riley M. Dairy Intake Enhances Body Weight and Composition Changes during Energy Restriction in 18-50-Year-Old Adults-A Meta-Analysis of Randomized Controlled Trials. Nutrients. 2016 Jul 1;8(7):394. doi: 10.3390/nu8070394. PMID: 27376321; PMCID: PMC4963870.
  • Shi Y, Zhan Y, Chen Y, Jiang Y. Effects of dairy products on bone mineral density in healthy postmenopausal women: a systematic review and meta-analysis of randomized controlled trials. Arch Osteoporos. 2020 Mar 18;15(1):48. doi: 10.1007/s11657-020-0694-y. PMID: 32185512.
  • Ulven SM, Holven KB, Gil A, Rangel-Huerta OD. Milk and Dairy Product Consumption and Inflammatory Biomarkers: An Updated Systematic Review of Randomized Clinical Trials. Adv Nutr. 2019 May 1;10(suppl_2):S239-S250. doi: 10.1093/advances/nmy072. PMID: 31089732; PMCID: PMC6518147.

Alimentos a limitar

  • Bolúmar F, Olsen J, Rebagliato M, Bisanti L. Caffeine intake and delayed conception: a European multicenter study on infertility and subfecundity. European Study Group on Infertility Subfecundity. Am J Epidemiol. 1997 Feb 15;145(4):324-34. doi: 10.1093/oxfordjournals.aje.a009109. PMID: 9054236.
  • Weng X, Odouli R, Li DK. Maternal caffeine consumption during pregnancy and the risk of miscarriage: a prospective cohort study. Am J Obstet Gynecol. 2008 Mar;198(3):279.e1-8. doi: 10.1016/j.ajog.2007.10.803. Epub 2008 Jan 25. PMID: 18221932.
  • Nichols, Lily; Hendrickson-Jack, Lisa. Real Food for Fertility: Prepare your body for pregnancy with preconception nutrition and fertility awareness. Fertility Food Publishing. Edição do Kindle.
  • Gill, J. “$e e"ects of moderate alcohol consumption on female hormone levels and reproductive function.” Alcohol and Alcoholism 35(5) (2000): 417–423.
  • Schliep, K.C., et al. “Alcohol intake, reproductive hormones, and menstrual cycle function: a prospective cohort study.” !e American Journal of Clinical Nutrition 102(4) (2015): 933–942.
  • Van Heertum, K., and B. Rossi. “Alcohol and fertility: how much is too much?” Fertility Research and Practice 3(1) (2017): 1–7.
  • Tolstrup, J.S., et al. “Alcohol use as predictor for infertility in a representative population of Danish women.” Acta Obstetricia et Gynecologica Scandinavica 82(8) (2003): 744–749.
  • Van Heertum, K., and B. Rossi. “Alcohol and fertility: how much is too much?” Fertility Research and Practice 3(1) (2017): 1–7.
  • Lieber, C.S. “Alcohol, liver, and nutrition.” Journal of the American College of Nutrition 10(6) (1991): 602–632.
  • Carpenter, B.L., et al. “Oocyte age and preconceptual alcohol use are highly correlated with epigenetic imprinting of a noncoding RNA (nc886).” Proceedings of the National Academy of Sciences 118(12) (2021); Marttila, S., et al. “Methylation status of nc886 epiallele re%ects periconceptional conditions and is associated with glucose metabolism through nc886 RNAs.” Clinical Epigenetics 13(1)(2021): 1–18.
  • Van Heertum, K., and B. Rossi. “Alcohol and fertility: how much is too much?” Fertility Research and Practice 3(1)(2017): 1–7.
  • Rossi, B.V., et al. “E"ect of alcohol consumption on in vitro fertilization.” Obstetrics & Gynecology 117(1)(2011): 136.
  • Fenster, L., et al. “Ca"eine consumption and menstrual function.” American Journal of Epidemiology 149( 6) (1999): 550–557; Kotsopoulos, J.A., et al. “Relationship between ca"eine intake and plasma sex hormone concentrations in premenopausal and postmenopausal women.” Cancer 115(12) (2009): 2765–2774.
  • Stanton, C.K., and R.H. Gray. “E"ects of ca"eine consumption on delayed conception.” Am J Epidemiol 142(12) (1995): 1322–1329; Wilcox, A. et al. “Ca"einated beverages and decreased fertility.” !e Lancet 332(8626–8627) (1988): 1453–1456.
  • Hatch, E.E., and M.B. Bracken. “Association of delayed conception with ca"eine consumption.” Am J Epidemiol 138(12) (1993): 1082–1092.
  • Rasch, V. “Cigarette, alcohol, and ca"eine consumption: risk factors for spontaneous abortion.” Acta Obstet Gynecol Scand 82(2) (2003): 182–188.
  • Purdue-Smithe, A.C., et al. “Preconception ca"eine metabolites, ca"einated beverage intake, and fecundability.” !e American Journal of Clinical Nutrition 115.4 (2022): 1227–1236.
  • Í Soylu, L., et al. “Co"ee, tea and ca"eine consumption and risk of primary infertility in women: a Danish cohort study.” Acta Obstet Gynecol Scand 97(5) (2018): 570–576.
  • Lovallo, W.R., et al. “Ca"eine stimulation of cortisol secretion across the waking hours in relation to ca"eine intake levels.” Psychosomatic Medicine 67(5) (2005): 734–739; Strauss III, J.F., and R.L. Barbieri (2013). Yen and Ja"e’s Reproductive Endocrinology, 7th edition. Philadelphia, PA: Elsevier Health Sciences, 88–89.
  • Solano, M.E., and P.C. Arck. “Steroids, pregnancy and fetal development.” Frontiers in Immunology 10 (2020): 3017.
  • Hahn, K.A., et al. “Correlates of menstrual cycle characteristics among nulliparous Danish women.” Clinical Epidemiology 5 (2013): 311.
  • Schubert, M.M., et al. “Ca"eine, co"ee, and appetite control: a review.” International Journal of Food Sciences and Nutrition 68(8) (2017): 901–912; Gavrieli, A., et al. “E"ect of di"erent amounts of co"ee on dietary intake and appetite of normal weight and overweight/obese individuals.” Obesity 21(6) (2013): 1127–1132; Kale, L.B., and K.J. Reddy. “A study on ca"eine consumption and its association with stress and appetite among call centre employees in Mumbai city, India.” International Journal of Community Medicine and Public Health 4(3) (2017): 835–840.
  • Greer, F., et al. “Ca"eine ingestion decreases glucose disposal during a hyperinsulinemiceuglycemic clamp in sedentary humans.” Diabetes 50(10) (2001): 2349–2354.
  • Lane, J.D., et al. “Ca"eine impairs glucose metabolism in type 2 diabetes.” Diabetes Care 27(8) (2004): 2047–2048.
  • Ricci, E., et al. “Co"ee and ca"eine intake and male infertility: a systematic review.” Nutrition Journal 16(1) (2017): 1–14.
  • Rasch, V. “Cigarette, alcohol, and ca"eine consumption: risk factors for spontaneous abortion.” Acta Obstet Gynecol Scand 82(2) (2003): 182–188.
  • Bunker, M.L., and M. McWilliams. “Ca"eine content of common beverages.” Journal of the American Dietetic Association 74(1) (1979): 28–32; McCusker, R.R., et al. “Ca"eine content of energy drinks, carbonated sodas, and other beverages.” Journal of Analytical Toxicology 30(2) (2006): 112–114.
  • Gross, L.S., et al. “Increased consumption of re#ned carbohydrates and the epidemic of type 2 diabetes in the United States: an ecologic assessment.” Am J Clin Nutr 79(5) (2004): 774–779.
  • Goletzke, J., et al. “Dietary micronutrient intake during pregnancy is a function of carbohydrate quality.” Am J Clin Nutr 102(3) (2015): 626–632.
  • Cordain, L., et al. “Origins and evolution of the Western diet: health implications for the 21st century.” Am J Clin Nutr 81(2) (2005): 341–354.
  • Houghton, S.C., and E.R. Bertone-Johnson. “Macronutrients and premenstrual syndrome.” Advances in Medicine and Biology 87 (2015): 137–156; Salley, K.E.S., et al. “Position statement: glucose intolerance in polycystic ovary syndrome—a position statement of the Androgen Excess Society.” !e Journal of Clinical Endocrinology & Metabolism 92(12) (2007): 4546–4556; Loy, S.L., et al. “Plasma glycemic measures and fecundability in a Singapore preconception cohort study.” Fertility and Sterility 115(1) (2021): 138–147; Chavarro, J.E., et al. “A prospective study of dietary carbohydrate quantity and quality in relation to risk of ovulatory infertility.” European Journal of Clinical Nutrition 63(1) (2009): 78–86.; Aghaee, B., et al. “Glycemic index, glycemic load, dietary in%ammatory index, and risk of infertility in women.” Food Science & Nutrition (2023).
  • Maasen, K., et al. “High dietary glycemic load is associated with higher concentrations of urinary advanced glycation endproducts: the Cohort on Diabetes and Atherosclerosis Maastricht (CODAM) Study.” Am J Clin Nutr 110(2) (2019): 358–366.
  • Takahashi, N., et al. “Accumulation of advanced glycation end products in follicles is associated with poor oocyte developmental competence.” Molecular Human Reproduction 25(11) (2019): 684–694.
  • Livshits, A., and D.S. Seidman. “Fertility issues in women with diabetes.” Women’s Health 5(6) (2009): 701–707.
  • Willis, S.K., et al. “Glycemic load, dietary #ber, and added sugar and fecundability in 2 preconception cohorts.” Am J Clin Nutr 112.1 (2020): 27-38; Willis, S. K., et al. “Glycemic load, dietary #ber, and added sugar and fecundability in a North American preconception cohort.” Fertil Steril 110(4) (2018): e95.
  • Grieger, J.A. “Preconception diet, fertility, and later health in pregnancy.” Current Opinion in Obstetrics & Gynecology 32(3) (2020): 227–232.
  • Cordain, L., et al. “Origins and evolution of the Western diet: health implications for the 21st century.” Am J Clin Nutr 81(2) (2005): 341–354.
  • Atkinson, F.S., et al. “International tables of glycemic index and glycemic load values: 2008.” Diabetes Care 31(12) (2008): 2281–2283.
  • Poutanen, K., et al. “Sourdough and cereal fermentation in a nutritional perspective.” Food Microbiology 26(7) (2009): 693–699.
  • Korem, T., et al. “Bread a"ects clinical parameters and induces gut microbiome-associated personal glycemic responses.” Cell Metabolism 25(6) (2017): 1243–1253.
  • Tucker, A.J., et al. “E"ects of breads of varying carbohydrate quality on postprandial glycaemic, incretin and lipidaemic response after #rst and second meals in adults with diet-controlled type 2 diabetes.” Journal of Functional Foods 6 (2014): 116–125.
  • Czaja-Bulsa, G. “Non coeliac gluten sensitivity–a new disease with gluten intolerance.” Clinical Nutrition 34(2) (2015): 189–194.
  • Quero, J.C.S., et al. “Nutritional assessment of gluten-free diet. Is gluten-free diet de#cient in some nutrient?” Anales de Pediatría 83(1) (2015): 33–39.
  • Vici, G., et al. “Gluten free diet and nutrient de#ciencies: a review.” Clinical Nutrition 35(6) (2016): 1236–1241.
  • Nenna, R., et al. “Immediate e"ect on fertility of a gluten-free diet in women with untreated coeliac disease.” Gut 60(7) (2011): 1023–1024; Skoracka, K., et al. “Female fertility and the nutritional approach: the most essential aspects.” Advances in Nutrition 12(6) (2021): 2372–2386.
  • Gross, L.S., et al. “Increased consumption of re#ned carbohydrates and the epidemic of type 2 diabetes in the United States: an ecologic assessment.” Am J Clin Nutr 79(5) (2004): 774–779.
  • Hatch, E.E., et al. “Intake of sugar-sweetened beverages and fecundability in a North American preconception cohort.” Epidemiology 29(3) (2018): 369–378.
  • Machtinger, R., et al. “Association between preconception maternal beverage intake and in vitro fertilization outcomes.” Fertil Steril 108(6) (2017): 1026–1033.
  • Fontana, R., and S. Della Torre. “$e deep correlation between energy metabolism and reproduction: a view on the e"ects of nutrition for women fertility.” Nutrients 8(2) (2016): 87; Chavarro, J.E., et al. “A prospective study of dietary carbohydrate quantity and quality in relation to risk of ovulatory infertility.” Eur J Clin Nutr 63 (2009): 78–86.
  • Harder, N.H.O., et al. “E"ects of dietary glucose and fructose on copper, iron, and zinc metabolism parameters in humans.” Nutrients 12(9) (2020): 2581.
  • Airaodion, A.I., et al. “Implication of sugar intake in haemorrhoid and menstruation.” International Journal of Research and Reports in Hematology (2019): 1–9; Gagua, T., et al. “Primary dysmenorrhea: prevalence in adolescent population of Tbilisi, Georgia and risk factors.” Journal of the Turkish German Gynecological Association 13(3) (2012): 162.
  • Rosenkranz, S., et al. “Glycemic control outcomes following three weeks of added sugarsweetened beverages or 100% fruit juice: a randomized controlled trial (P12-015-19).” Current Developments in Nutrition 3(suppl. 1) (2019): nzz035-P12.
  • Phillips, K.M., et al. “Total antioxidant content of alternatives to re#ned sugar.” Journal of the American Dietetic Association 109(1) (2009): 64–71.
  • Yang, Q.. “Gain weight by ‘going diet?’ Arti#cial sweeteners and the neurobiology of sugar cravings: Neuroscience 2010.” !e Yale Journal of Biology and Medicine 83(2) (2010): 101.
  • Zhu, Y., et al. “Maternal consumption of arti#cially sweetened beverages during pregnancy, and o"spring growth through 7 years of age: a prospective cohort study.” International Journal of Epidemiology 46(5) (2017): 1499–1508.
  • Suez, J., et al. “Arti#cial sweeteners induce glucose intolerance by altering the gut microbiota.” Nature 514(7521) (2014): 181–186.
  • Abou-Donia, M.B., et al. “Splenda alters gut micro%ora and increases intestinal p-glycoprotein and cytochrome p-450 in male rats.” Journal of Toxicology and Environmental Health, Part A 71(21) (2008): 1415–1429.
  • Pałkowska-Goździk, E., et al. “Type of sweet %avour carrier a"ects thyroid axis activity in male rats.” European Journal of Nutrition (2016): 1–10.
  • Humphries, P., et al. “Direct and indirect cellular e"ects of aspartame on the brain.” European Journal of Clinical Nutrition 62 (2008): 451–462; Chattopadhyay, S., et al. “Arti#cial sweeteners–a review.” Journal of Food Sciences and Technology 51(4) (2014): 611–621.
  • Chappell, G.A., et al. “Lack of potential carcinogenicity for steviol glycosides: systematic evaluation and integration of mechanistic data into the totality of evidence.” Food and Chemical Toxicology 150 (2021): 112045.
  • Mohd-Radzman, N.H., et al. “Potential roles of Stevia rebaudiana Bertoni in abrogating insulin resistance and diabetes: a review.” Evidence-Based Complementary and Alternative Medicine 2013. (2013); Goyal, S.K., and R.K. Goyal. “Stevia (Stevia rebaudiana) a biosweetener: a review.” International Journal of Food Sciences and Nutrition 61(1) (2010): 1–10.
  • Melis, M.S. “E"ects of chronic administration of Stevia rebaudiana on fertility in rats.” Journal of Ethnopharmacology 67(2) (1999): 157–161.
  • Jiang, J., et al. “E"ects of daily exposure to saccharin sodium and rebaudioside A on the ovarian cycle and steroidogenesis in rats.” Reproductive Toxicology 76 (2018): 35–45.
  • Chappell, G.A., et al. “Lack of potential carcinogenicity for steviol glycosides: systematic evaluation and integration of mechanistic data into the totality of evidence.” Food and Chemical Toxicology 150 (2021): 112045.
  • Nayak, P.A., et al. “$e e"ect of xylitol on dental caries and oral %ora.” Clinical, Cosmetic and Investigational Dentistry 6 (2014): 89.
  • Xia, Z., et al. “Experimental acute toxicity of xylitol in dogs.” Journal of Veterinary Pharmacology and !erapeutics 32(5) (2009): 465–469.
  • Munro, I.C., et al. “Erythritol: an interpretive summary of biochemical, metabolic, toxicological and clinical data.” Food and Chemical Toxicology 36(12) (1998): 1139–1174.
  • Den Hartog, G.J.M., et al. “Erythritol is a sweet antioxidant.” Nutrition 26(4) (2010): 449–458.
  • Soejarto, D.D., et al. “Highly sweet compounds of plant origin: from ethnobotanical observations to wide utilization.” Journal of Ethnopharmacology 243 (2019): 112056.
  • Lin, G.-P., et al. “E"ect of Siraitia grosvenorii polysaccharide on glucose and lipid of diabetic rabbits induced by feeding high fat/high sucrose chow.” Experimental Diabetes Research (2007): 67435; Akihisa, T., et al. “Cucurbitane glycosides from the fruits of Siraitia grosvenorii and their inhibitory e"ects on Epstein−Barr virus activation.” Journal of Natural Products 70(5) (2007): 783–788.
  • Du, Y., et al. “Mogroside-rich extract from Siraitia grosvenorii fruits protects against the depletion of ovarian reserves in aging mice by ameliorating in%ammatory stress.” Food & Function 13(1) (2022): 121–130; Nie, J., et al. “Mogroside V improves porcine oocyte in vitro maturation and subsequent embryonic development.” !eriogenology 141 (2020): 35–40.
  • Simopoulos, A.P., and J.J. DiNicolantonio. “$e importance of a balanced Ȧ-6 to Ȧ-3 ratio in the prevention and management of obesity.” Open Heart 3(2) (2016): e000385; Kaliannan, K., et al. “A host-microbiome interaction mediates the opposing e"ects of omega-6 and omega-3 fatty acids on metabolic endotoxemia.” Scienti#c Reports 5(1) (2015): 1–17; Saini, R.K., and Y.-S. Keum. “Omega-3 and omega-6 polyunsaturated fatty acids: dietary sources, metabolism, and signi#cance—a review.” Life Sciences 203 (2018): 255–267.
  • Jandacek, R.J. “Linoleic acid: a nutritional quandary.” Healthcare 5(2) (2017): 25; Fontana, R., and S. Della Torre. “$e deep correlation between energy metabolism and reproduction: a view on the e"ects of nutrition for women fertility.” Nutrients 8(2) (2016): 87.
  • Grootveld, M., et al. “Potential adverse public health e"ects a"orded by the ingestion of dietary lipid oxidation product toxins: signi#cance of fried food sources.” Nutrients 12(4) (2020): 974.
  • Mihalas, B.P., et al. “$e lipid peroxidation product 4-hydroxynonenal contributes to oxidative stress-mediated deterioration of the ageing oocyte.” Scienti#c Reports 7(1)(2017): 1–18; Lord, T., et al. “Accumulation of electrophilic aldehydes during postovulatory aging of mouse oocytes causes reduced fertility, oxidative stress, and apoptosis.” Biology of Reproduction 92(2) (2015): 33–1; Endo, Y., et al. “Linolenic acid as the main source of acrolein formed during heating of vegetable oils.” Journal of the American Oil Chemists’ Society 90(7) (2013): 959–964; Tremellen, K.. “Oxidative stress and male infertility—a clinical perspective.” Human Reproduction Update 14(3) (2008): 243–258.
  • Hansen, S.O., and U.B. Knudsen. “Endometriosis, dysmenorrhoea and diet.” European Journal of Obstetrics & Gynecology and Reproductive Biology 169(2) (2013): 162–171.
  • Grootveld, M., et al. “Potential adverse public health e"ects a"orded by the ingestion of dietary lipid oxidation product toxins: signi#cance of fried food sources.” Nutrients 12(4) (2020): 974.
  • Evans, H.M., and K.S. Bishop. “On the existence of a hitherto unrecognized dietary factor essential for reproduction.” Science 56(1458) (1922): 650–651.
  • McDougall, M., et al. “Lethal dysregulation of energy metabolism during embryonic vitamin E de#ciency.” Free Radical Biology and Medicine 104 (2017): 324–332.
  • Chiu, Y.-H., et al. “Serum omega-3 fatty acids and treatment outcomes among women undergoing assisted reproduction.” Human Reproduction 33(1)(2018): 156–165; Mirabi, P., et al. “$e role of fatty acids on ICSI outcomes: a prospective cohort study.” Lipids in Health and Disease 16(1) (2017): 1–9; Ciepiela, P., et al. “Arachidonic and linoleic acid derivatives impact oocyte ICSI fertilization–a prospective analysis of follicular %uid and a matched oocyte in a ‘one follicle–one retrieved oocyte–one resulting embryo’ investigational setting.” PLOS One 10(3) (2015): e0119087.
  • Duttaroy, A.K., and S. Basak. (2016). “Fat-soluble and antioxidant vitamins and minerals: their roles in placentation.” In Early Nutrition and Lifestyle Factors, 69–89. New York: Springer; Kasimanickam, R.K., et al. “Tocopherol induced angiogenesis in placental vascular network in late pregnant ewes.” Reproductive Biology and Endocrinology 8 (2010): 86.
  • Raederstor", D., et al. “Vitamin E function and requirements in relation to PUFA.” British Journal of Nutrition 114(8) (2015): 1113–1122.
  • Rai, D., et al. “Nutritional status as assessed by nutrient intakes and biomarkers among women of childbearing age–is the burden of nutrient inadequacies growing in America?” Public Health Nutrition 18(9) (2015): 1658–1669; Maras, J.E., et al. “Intake of Į-tocopherol is limited among US adults.” Journal of the American Dietetic Association 104(4) (2004): 567–575.
  • Siddiqui, M.A., et al. “Role of vitamin E in pregnancy.” In Vitamin E in Health and Disease. London: IntechOpen (2021); Shamim, A.A., et al. “First-trimester plasma tocopherols are associated with risk of miscarriage in rural Bangladesh.” Am J Clin Nutr 101(2) (2015): 294–301.
  • Nehra, D., et al. “Prolonging the female reproductive lifespan and improving egg quality with dietary omega‐3 fatty acids.” Aging Cell 11(6) (2012): 1046–1054; Skowrońska, P., et al. “Follicular fat-soluble vitamins as markers of oocyte competency.” Systems Biology in Reproductive Medicine 66(2) (2020): 112–121; Lebold, K.M., and M.G. Traber. “Interactions between Į-tocopherol, polyunsaturated fatty acids, and lipoxygenases during embryogenesis.” Free Radical Biology and Medicine 66 (2014): 13–19; Lauritzen, L., et al. “DHA e"ects in brain development and function.” Nutrients 8(1)(2016): 6.
  • Islam, M.A., et al. “Trans fatty acids and lipid pro#le: A serious risk factor to cardiovascular disease, cancer and diabetes.” Diabetes & Metabolic Syndrome: Clinical Research & Reviews 13(2) (2019): 1643–1647.
  • Chavarro, J.E., et al. “Dietary fatty acid intakes and the risk of ovulatory infertility.” Am J Clin Nutr 85(1) (2007): 231–237.
  • Gha"arzad, A., et al. “Correlation of erythrocyte trans fatty acids with ovulatory disorder infertility in polycystic ovarian syndrome.” Advances in Bioscience and Clinical Medicine 2(2) (2014): 8–18.
  • Eskew, A.M., et al. “$e association between fatty acid index and in vitro fertilization outcomes.” Journal of Assisted Reproduction and Genetics 34(12) (2017): 1627–1632.
  • Missmer, S.A., et al. “A prospective study of dietary fat consumption and endometriosis risk.” Hum Reprod 25(6) (2010): 1528–1535.
  • Chavarro, J.E., et al. “Trans fatty acid intake is inversely related to total sperm count in young healthy men.” Hum Reprod 29(3) (2014): 429–440.
  • Wise, L.A., et al. “Dietary fat intake and fecundability in 2 preconception cohort studies.” Am J Epidemiol 187(1)(2018): 60–74.
  • Innis, S.M. “Trans fatty intakes during pregnancy, infancy and early childhood.” Atherosclerosis Supplements 7(2) (2006): 17–20; Morrison, J.A., et al. “Dietary trans fatty acid intake is associated with increased fetal loss.” Fertil Steril 90(2) (2008): 385–390.
  • Ferlay, A., et al. “Production of trans and conjugated fatty acids in dairy ruminants and their putative e"ects on human health: a review.” Biochimie (2017).
  • Daley, C.A., et al. “A review of fatty acid pro#les and antioxidant content in grass-fed and grain-fed beef.” Nutrition Journal 9(1) (2010): 10.
  • Fernandez-Lopez, A., et al. “Removing iso%avones from modern soyfood: why and how?” Food Chemistry 210 (2016): 286–294; Axelson, M., et al. “Soya–a dietary source of the non-steroidal oestrogen equol in man and animals.” Journal of Endocrinology 102(1) (1984): 49–56.
  • Cassidy, A., et al. “Biological e"ects of iso%avones in young women: importance of the chemical composition of soyabean products.” British Journal of Nutrition 74(4) (1995): 588.
  • Andrews, M.A., et al. “Dietary factors and luteal phase de#ciency in healthy eumenorrheic women.” Hum Reprod 30(8) (2015): 1942–1951.
  • Practice Committee of the American Society for Reproductive Medicine. Current clinical irrelevance of luteal phase de#ciency: a committee opinion. Fertil Steril 103 (2015): e27– e32.
  • Jacobsen, B.K., et al. “Soy iso%avone intake and the likelihood of ever becoming a mother: the Adventist Health Study-2.” International Journal of Women’s Health 6 (2014): 377.
  • Qin, H., et al. “High soy iso%avone or soy-based food intake during infancy and in adulthood is associated with an increased risk of uterine #broids in premenopausal women: a meta-analysis.” Nutrition Research 71 (2019): 30–42.
  • Fortin, C., et al. “Alternatives to hysterectomy: the burden of #broids and the quality of life.” Best Practice & Research Clinical Obstetrics & Gynaecology 46 (2018): 31–42.
  • Lopez, H.W., et al. “Minerals and phytic acid interactions: is it a real problem for human nutrition?” International Journal of Food Science & Technology 37(7) (2002): 727–739.
  • Hüser, S., et al. “E"ects of iso%avones on breast tissue and the thyroid hormone system in humans: a comprehensive safety evaluation.” Archives of Toxicology 92(9) (2018): 2703– 2748.
  • “eCFR — Code of Federal Regulations - acamedia.info.” September 2, 2016, http://www. acamedia.info/sciences/sciliterature/globalw/reference/glyphosate/US_eCFR.pdf.
  • Bøhn, T., et al. “Compositional di"erences in soybeans on the market: glyphosate accumulates in Roundup Ready GM soybeans.” Food Chemistry 153 (2014): 207–215.
  • Mohammadi, K., et al. “A systematic review and meta-analysis of the impacts of glyphosate on the reproductive hormones.” Environmental Science and Pollution Research (2021): 1–12.
  • Kosečková, P., et al. “Estimation of cadmium load from soybeans and soy-based foods for vegetarians.” Environmental Monitoring and Assessment 192(2) (2020): 1–7.
  • Bennetau-Pelissero, C.. “Risks and bene#ts of phytoestrogens: where are we now?” Current Opinion in Clinical Nutrition & Metabolic Care 19(6) (2016): 477–483; Egounlety, M., and O.C. Aworh. “E"ect of soaking, dehulling, cooking and fermentation with Rhizopus oligosporus on the oligosaccharides, trypsin inhibitor, phytic acid and tannins of soybean (Glycine max Merr.), cowpea (Vigna unguiculata L. Walp) and groundbean (Macrotyloma geocarpa Harms).” Journal of Food Engineering 56(2) (2003): 249–254.
  • Zava, T.T., and D. Zava. “Assessment of Japanese iodine intake based on seaweed consumption in Japan: a literature-based analysis.” !yroid Research 4(1) (2011): 1–7; Kim, J.Y., et al. “Dietary iodine intake and urinary iodine excretion in normal Korean adults.” Yonsei Medical Journal 39(4) (1998): 355–362.
  • Messina, M., et al. “Estimated Asian adult soy protein and iso%avone intakes.” Nutrition and Cancer 55(1) (2006): 1–12.
  • Bakaloudi, D.R., et al. “Intake and adequacy of the vegan diet: a systematic review of the evidence.” Clinical Nutrition (2020).
  • Drinking too much alcohol can harm your health. Learn the facts. Disponível em: <https://www.cdc.gov/alcohol/fact-sheets/alcohol-use.htm>. Acesso em: 19 mar. 2024.
  • Excessive alcohol use and risks to women’s health. Disponível em: <https://www.cdc.gov/alcohol/fact-sheets/womens-health.htm>. Acesso em: 19 mar. 2024.
  • Caffeine: How much is too much? Disponível em: <https://www.mayoclinic.org/healthy-lifestyle/nutrition-and-healthy-eating/in-depth/caffeine/art-20045678>. Acesso em: 19 mar. 2024.

Suplementos

  • UNIVERSITY OF CALIFORNIA SAN FRANCISCO. New findings on sperm life cycle could impact fertility treatments. Disponível em: <https://www.ucsf.edu/news/2006/03/101730/new-findings-sperm-life-cycle-could-impact-fertility-treatments>. Acesso em: 16 mar. 2024.
  • AMANN, R. P. The cycle of the seminiferous epithelium in humans: A need to revisit? Journal of andrology, v. 29, n. 5, p. 469–487, 2008.
  • Akbaribazm M, Goodarzi N, Rahimi M. Female infertility and herbal medicine: An overview of the new findings. Food Sci Nutr. 2021 Aug 15;9(10):5869-5882. doi: 10.1002/fsn3.2523. PMID: 34646552; PMCID: PMC8498057.
  • Wachtel-Galor S, Benzie IFF. Herbal Medicine: An Introduction to Its History, Usage, Regulation, Current Trends, and Research Needs. In: Benzie IFF, Wachtel-Galor S, editors. Herbal Medicine: Biomolecular and Clinical Aspects. 2nd edition. Boca Raton (FL): CRC Press/Taylor & Francis; 2011. Chapter 1. Available from: https://www.ncbi.nlm.nih.gov/books/NBK92773/
  • Blom, H.J., et al. “Neural tube defects and folate: case far from closed.” Nature Reviews Neuroscience 7(9) (2006): 724–731.
  • D’Souza, S.W., et al. “Maternal inositol status and neural tube defects: a role for the human yolk sac in embryonic inositol delivery?” Advances in Nutrition 12(1) (2021): 212–222.
  • Ibid.; Leung, K-Y., et al. “Partitioning of one-carbon units in folate and methionine metabolism is essential for neural tube closure.” Cell Reports 21(7) (2017): 1795–1808; Petersen, J.M., et al. “One-carbon cofactor intake and risk of neural tube defects among women who meet folic acid recommendations: a multicenter case-control study.” American Journal of Epidemiology 188(6) (2019): 1136–1143; Dey, A.C., et al. “Maternal and neonatal serum zinc level and its relationship with neural tube defects.” Journal of Health, Population, and Nutrition 28(4) (2010): 343.
  • Shoob, H.D., et al. “Dietary methionine is involved in the etiology of neural tube defect– a"ected pregnancies in humans.” Journal of Nutrition 131(10) (2001): 2653–2658.
  • Bird, J.K., et al. “Risk of de#ciency in multiple concurrent micronutrients in children and adults in the United States.” Nutrients 9(7) (2017): 655.
  • Veugelers, P.J., and J.P. Ekwaru. “A statistical error in the estimation of the recommended dietary allowance for vitamin D.” Nutrients 6(10) (2014): 4472–4475; Bae, S., et al. “Vitamin B-12 status di"ers among pregnant, lactating, and control women with equivalent nutrient intakes.” J Nutr 145(7) (2015): 1507–1514.
  • Pfei"er, C.M., et al. “Unmetabolized folic acid is detected in nearly all serum samples from US children, adolescents, and adults.” J Nutr 145(3) (2015): 520–531.
  • Menezo, Y., et al. “Folic acid, folinic acid, 5 methyl tetrahydrofolate supplementation for mutations that a"ect epigenesis through the folate and one-carbon cycles.” Biomolecules 12(2) (2022): 197.
  • Sibani, S., et al. “Characterization of mutations in severe methylenetetrahydrofolate reductase de#ciency reveals an FAD responsive mutation.” Human Mutation 21(5) (2003): 509–520; Frosst, P., et al. “A candidate genetic risk factor for vascular disease: a common mutation in methylenetetrahydrofolate reductase.” Nature Genetics 109(1) (1995): 111
  • Ho"brand, A.V., and D.G. Weir. “$e history of folic acid.” British Journal of Haematology 113(3) (2001): 579–589.
  • Schmid, A., and B. Walther. “Natural vitamin D content in animal products.” Advances in Nutrition 4(4) (2013): 453–462.

Exames

  • Infertility. Disponível em: <https://www.mayoclinic.org/diseases-conditions/infertility/symptoms-causes/syc-20354317>. Acesso em: 17 mar. 2024.
  • Cambiaghi, Arnaldo Schizzi; Rosa, Débora de Souza. Fertilidade e alimentação (Portuguese Edition) . La Vida. Edição do Kindle.