Îòêóäà áåðóòñÿ äåòè? Êðàòêèé ïóòåâîäèòåëü ïî ïåðåõîäó èç ëàãåðÿ ÷àéëäôðè ê òèõèì ðàäîñòÿì ñåìåéñòâåííîñòè Êàçàíöåâà Àñÿ
48. Gallo, S. et al. (2020). Vitamin D supplementation during pregnancy: an evidence analysis center systematic review and meta-analysis. Journal of the Academy of Nutrition and Dietetics, 120 (5), 898–924.e4.
49. Roth, D. E. (2011). Vitamin D supplementation during pregnancy: safety considerations in the design and interpretation of clinical trials. Journal of Perinatology, 31, 449–459.
50. Holick, M. (2011). Vitamin D: evolutionary, physiological and health perspectives. Current Drug Targets, 12, 4–18.
51. Middleton, P. et al. (2018). Omega-3 fatty acid addition during pregnancy. Cochrane database of systematic reviews, 11, CD003402.
52. Taylor, C. M. et al. (2018). A review of guidance on fish consumption in pregnancy: is it fit for purpose? Public Health Nutrition, 21 (11), 2149–2159.
53. De Luca, C. et al. (2015). Listeria infection in pregnancy: a review of literature. The Open Infectious Diseases Journal, 9, 20–25.
54. Fujimura, T. et al. (2019). Influences of maternal factors over offspring allergies and the application for food allergy. Frontiers in Immunology, 10, 1933.
55. Oussalah, A. et al. (2020) Health outcomes associated with vegetarian diets: an umbrella review of systematic reviews and meta-analyses. Clinical Nutrition, 39 (11), 3283–3307.
56. Sebastiani, G. et al. (2019). The effects of vegetarian and vegan diet during pregnancy on the health of mothers and offspring. Nutrients, 11 (3), 557.
57. Jedut, P. et al. (2021). Some plant food products present on the Polish market are a source of vitamin B12. Applied Sciences, 11, 3601.
58. De Brito, B. M. et al. (2022). Vitamin B12 sources in non-animal foods: a systematic review. Critical Reviews in Food Science and Nutrition, 3, 1–15.
59. Chan, C. W. H. et al. (2019). Effectiveness of physical activity interventions on pregnancy-related outcomes among pregnant women: a systematic review. International Journal of Environmental Research and Public Health, 16, 1840.
60. DiPietro, L. et al. (2019). Benefits of physical activity during pregnancy and postpartum: an umbrella review. Medicine and Science in Sports and Exercise, 51 (6), 1292–1302.
61. Baena-Garcia, L. et al. (2018). Association of sedentary time and physical activity during pregnancy with maternal and neonatal birth outcomes. The GESTAFIT Project. Scandinavian Journal of Medicine & Science in Sports, 29 (3), 407–414.
62. Pastorino, S. et al. (2019). Associations between maternal physical activity in early and late pregnancy and offspring birth size: remote federated individual level meta-analysis from eight cohort studies. An International Journal of Obstetrics and Gynaecology, 126 (4), 459–470.
63. McMillan, A. G. et al. (2019). Effects of aerobic exercise during pregnancy on 1-month infant neuromotor skills. Medicine and Science in Sports and Exercise, 51 (8), 1671–1676.
64. Harmsworth, M. et al. (2023). High-intensity exercise during pregnancy – a position paper by the European Board and College of Obstetrics and Gynaecology (EBCOG). European Journal of Obstetrics & Gynecology and Reproductive Biology, 285, 56–58.
65. Tsakiridis, I. et al. (2020). Exercise during pregnancy: a comparative review of guidelines. Journal of Perinatal Medicine, 48 (6), 519–525.
66. McCall, C. A. et al. (2013). “Therapeitic” bed rest in pregnancy: unethical and unsupported by data. Obstetrics and Gynecology, 121 (6), 1305–1308.
67. Walsh, C. A. (2020). Maternal activity restriction to reduce preterm birth: time to put this fallacy to bed. The Australian and New Zealand Journal of Obstetrics and Gynaecology, 60 (5), 813–815.
68. Warland, J. et al. (2018). Maternal sleep during pregnancy and poor fetal outcomes: a scoping review of the literature with meta-analysis. Sleep Medicine Reviews, 41, 197–219.
69. Kong, L. et al. (2019). The impact of sexual intercourse during pregnancy on obstetric and neonatal outcomes: a cohort study in China. Journal of Obstetrics and Gynaecology, 39 (4), 455–460.
70. Brown, H. L. (2008). Air embolism during pregnancy. Obstetrics and Gynecology, 111á, 481–482.
71. Grant, J. S. et al. (2020). Sexually transmitted infections in pregnancy: a narrative review of the global research gaps, challenges, and opportunities. Sexually Transmitted Diseases, 47 (12), 779–789.
72. Carbone, L. et al. (2019). Sexual intercourse for induction of spontaneous onset of labor: a systematic review and meta-analysis of randomized controlled trials. The Journal of Sexual Medicine, 16, 1787–1795.
73. Ravanelli, N. et al. (2018). Heat stress and fetal risk. Environmental limits for exercise and passive heat stress during pregnancy: a systematic review with best evidence synthesis. British Journal of Sports Medicine, 53 (13), 799–805.
74. Dreier, J. W. et al. (2014). Systematic review and meta-analyses: fever in pregnancy and health impacts in the offspring. Pediatrics, 133 (3), e674–688.
75. Grajewski, B. et al. (2015). Miscarriage among flight attendants. Epidemiology, 26 (2), 192–203.
Ãëàâà 6. ×òî óãîäíî ìîæåò ïîéòè íå òàê. Íî ýòî ìàëîâåðîÿòíî
1. Hardy, K. & Hardy, P. J. (2015). 1st trimester miscarriage: four decades of study. Translational Pediatrics, 4 (2) á, 189–200.
2. Jurkovic, D. et al. (2013). Diagnosis and management of first trimester miscarriage. BMJ, 346, f3676.
3. Abdelazim, I. A. et al. (2017). Miscarriage definitions, causes and management: review of literature. ARC Journal of Gynecology and Obstetrics, 2 (3), 20–31.
4. Cohain, J. S. et al. (2017). Spontaneous first trimester miscarriage rates per woman among parous women with 1 or more pregnancies of 24 weeks or more. BMC Pregnancy and Childbirth, 17, 437.
5. Giakoumelou, S. et al. (2016). The role of infection in miscarriage. Human Reproduction Update, 22 (1), 116–133.
6. Neu, N. et al. (2015). TORCH infections. Clinics in perinatology, 42 (1), 77–103.
7. Jaan, A. & Rajnik, M. TORCH complex. [Updated 2022 Oct 13]. In: StatPearls [Internet]. Treasure Island (FL): StatPearls Publishing. https://www.ncbi.nlm.nih.gov/books/NBK560528/
8. Johnson, S. K. & Johnson, P. T. J. (2021). Toxoplasmosis: recent advances in understanding the link between infection and host behavior. Annual Review of Animal Biosciences, 9, 249–264.
9. Ahmed, M. et al. (2020). Toxoplasmosis in pregnancy. European Journal of Obstetrics & Gynecology and Reproductive Biology, 255, 44–50.
10. Winter, A. K. & Moss, W. J. (2022). Rubella. Lancet, 399, 1336–1346.
11. Bouhtry, E. et al. (2014). Rubella and pregnancy: diagnosis, management and outcomes. Prenatal Diagnosis, 34 (13), 1246–1253.
12. Leruez-Ville, et al. (2020). Cytomegalovirus infection during pregnancy: state of the science. American Journal of Obstetrics & Gynecology, 223 (3), 330–349.
13. Hammad, W. A. B. & Konje, J. C. (2021). Herpes simplex virus infection in pregnancy – an update. European Journal of Obstetrics & Gynecology and Reproductive Biology, 259, 38–45.
14. Gallagher, T. & Lipsitch, M. (2019). Postexposure effects of vaccines on infectious diseases. Epidemiologic Reviews, 41 (1), 13–27.
15. De Villiers, M. J. et al. (2021). The impact of the timely birth dose vaccine on the global elimination of hepatitis B. Nature Communications, 12, 6223.
16. Bester, J. C. (2016). Measles and measles vaccination: a review. JAMA Pediatrics, 170 (12), 1209–1215.
17. Robl-Mathieu, M. et al. (2021). Vaccination in pregnancy. Deutsches Arzteblatt International, 118 (15), 262–268.
18. Decker, M. D. & Edwards, K. M. (2021). Pertussis (whooping cough). The Journal of Infectious Diseases, 224 (Supplement 4), S310 – S320.
19. Gross, M. M. et al. (2006). Does the way that women experience the onset of labour influence the duration of labour? British Journal of Obstetrics and Gynaecology, 113 (3), 289–294.
20. Matthews, A. t al. (2016). Interventions for nausea and vomiting in early pregnancy (review). Cochrane Database of Systematic Reviews, 9, CD007575.
21. Campbell, K. et al. (2016). The management of nausea and vomiting of pregnancy. Journal of Obstetrics and Gynaecology Canada, 38 (12), 1127–1137.
22. Gu, L. et al. (2021). Association of nausea and vomiting of pregnancy with infant growth in the first 24 months of life. Archives of Gynecology and Obstetrics, 304 (2), 429–438.
23. Magee, L. A. et al. (2022). Preeclampsia. The New England Journal of Medicine, 386, 1817–1832.
24. Jung, E. et al. (2022). The etiology of preeclampsia. American Journal of Obstetrics and Gynecology, 226 (Supplement 2), S844–S866.
25. Galaviz-Hernandez, C. et al. (2019). Parental determinants in preeclampsia. Frontiers in Physiology, 9, 1870.
26. Lee, J. et al. (2008). Anaphylaxis to husband’s seminal plasma and treatment by local desensitization. Clinical and Molecular Allergy, 6, 13.
27. Liu, L. et al. (2015). Global, regional and national causes of child mortality in 2000–13, with projections to inform post-2015 priorities: an updated systematic analysis. Lancet, 385, 430–440.
28. Schwarz, B. L. & O’Connor Leppert, M. L. (2022). Consequences of preterm birth. In: Developmental-Behavioral Pediatrics, Ed. by Feldman, Blum, Elias, Jimenez, & Stancin, 5th edition, Elsevier Health Sciences.
29. Berghella, V. & Saccone, G. (2019). Fetal fibronectin testing for reducing the risk of preterm birth (review). Cochrane Database of Systematic Reviews, 7, CD006843.
30. De Fonseca, E. B. et al. (2020). Preterm birth prevention. Best Practice & Research Clinical Obstetrics & Gynaecology, 69, 40–49.
31. Vogel, J. P. et al. (2018). The global epidemiology of preterm birth. Best Practice & Research Clinical Obstetrics & Gynaecology, 52, 3–12.
32. Heino, A. et al. (2016). Variations in multiple birth rates and impact on perinatal outcomes in Europe. PLoS One, 11 (3), e0149252.
33. Ferrero, D. M. et al. (2016). Cross-country individual participant analysis of 4.1 million singleton birth in 5 countries with very high human development index confirms known associations but provides no biologic explanation for 2/3 of all preterm births. PLoS One, 11 (9), e0162506.
34. Di Renzo, G. C. et al. (2018). The biological basis and prevention of preterm birth. Best Practice & Research Clinical Obstetrics & Gynaecology, 52, 13–22.
35. Dibo, M. et al. (2022). An overview of the role of probiotics in pregnancy-associated pathologies with a special focus on preterm birth. Journal of Reproductive Immunology, 150, 103493.
36. Dryllis, G. et al. (2020). Genetic polymorphisms implicated in major pregnancy complications: a review. Folia Medica, 62 (2), 230–237.
37. Scheffer, P. G. et al. (2021). Association between low fetal fraction in cell-free DNA testing and adverse pregnancy outcome: a systematic review. Prenatal Diagnosis, 41, 1287–1295.
38. Hornaday, K. K. et al. (2022). Is there a maternal blood biomarker that can predict spontaneous preterm birth prior to labour onset? A systematic review. PLoS One, 17 (4), e0265853.
Ãëàâà 7. Êàê áåðåìåííîñòü îòðàæàåòñÿ íà áóäóùåé æèçíè
1. Masukume, G. & Grech, V. (2015). The sex ratio at birth in South Africa increased 9 months after the 2010 FIFA World Cup. Early Human Development, 91 (12), 807–809.
2. Grech, V. (2015). The male: female ratio at birth in Malta is decreased by the Soccer World Cup. British Journal of Medicine & Medical Research, 7 (7), 580–584.
3. Harlap, S. (1979). Gender of infants conceived on different days of the menstrual cycle. The New England Journal of Medicine, 300 (26), 1445–1448.
4. Svenstrup, L. et al. (2021). Ovulation before or after intrauterine insemination does not affect live birth rates: a retrospective cohort study of 6701 cycles. Reproductive BioMedicine Online, 42 (5), 1015–1022.
5. Rahman, M. S. & Pang, M.-G. (2019). New biological insights on X and Y chromosome-bearing spermatozoa. Frontiers in Cell and Developmental Biology, 7, 388.
6. Yata, V. K. (2022). Sperm sexing and its role in livestock production. 1st Edition. Springer Singapore.
7. Karabinus, D. S. et al. (2014). The effectiveness of flow cytometric sorting of human sperm (MicroSort) for influencing a child’s sex. Reproductive Biology and Endocrinology, 12, 106.
8. Al-Qaraghouli, M. & Fang, Y. M. V. (2017). Effect of fetal sex on maternal and obstetric outcomes. Frontiers in Pediatrics, 5, 144.
9. Broere-Brown, Z. A. et al. (2020). Fetal sex and maternal pregnancy outcomes: a systematic review and meta-analysis. Biology of Sex Differences, 11, 26.
10. Galbarczyk, A. et al. (2019). Sons may be bad for maternal health at older age: new evidence for costs of reproduction in humans. The Journals of Gerontology. Series A, Biological Sciences and Medical Sciences, 74 (5), 648–651.
11. Douhard, M. et al. (2020). Sons accelerate maternal aging in a wild mammal. PNAS, 117 (9), 4850–4857.
12. Barker, D. J. P. & Osmond, C. (1986). Infant mortality, childhood nutrition, and ischaemic heart disease in England and Wales. The Lancet, 1 (8489), 1077–1081.
13. Schulz, L. C. (2010). The Dutch Hunger Winter and the develop-mental origins of health and disease. PNAS, 107 (39), 16757–16758.
14. Stanner, S. A. & Yudkin, J. S. (2001). Fetal programming and the Leningrad Siege study. Twin Research and Human Genetics, 4, 287–292.
15. Arima, Y. & Fukuoka, H. (2020). Developmental origins of health and disease theory in cardiology. Journal of Cardiology, 76, 14–17.
16. Cohen, J. H. & Kim, H. (2009). Sociodemographic and health characteristics associated with attempting weight loss during pregnancy. Preventing Chronic Disease, 6 (1), A07.
17. Ante, Z. et al. (2020). Pregnancy outcomes in women with anorexia nervosa. Eating disorders, 53 (5), 673–682.
18. Mirghani, H. M. & Hamud, O. A. (2006). The effect of maternal diet restriction on pregnancy outcome. American Journal of Perinatology, 23 (1), 21–24.
19. Faris, M. A. E. & Al-Holy, M. A. (2014). Implications of Ramadan intermittent fasting on maternal and fetal health and nutritional status: a review. Mediterranean Journal of Nutrition and Metabolism, 7, 107–118.
20. Chen, Y. et al. (2023). Chrononutrition during pregnancy and its association with maternal and offspring outcomes: a systematic review and meta-analysis of Ramadan and non-Ramadan studies. Nutrients, 15, 756.
21. Dong, J-Y. et al. (2020). Skipping breakfast before and during early pregnancy and incidence of gestational diabetes mellitus: the Japan Environment and Children Study. The American Journal of Clinical Nutrition, 111 (4), 829–834.
22. Mazumder, B. & Seeskin, Z. (2015). Breakfast skipping, extreme commutes, and the sex composition at birth. Biodemography and Social Biology, 61 (2), 187–208.
23. Oliver-Van Stichelen, S. & Hanover, J. A. (2015). You are what you eat: O-linked N-acetylglucosamine in disease, development and epigenetics. Current Opinion in Clinical Nutrition and Metabolic Care, 18 (4), 339–345.
24. Wang, Y. et al. (2019). Epigenetic regulation and risk factors during the development of human gametes and early embryos. Annual Review of Genomics and Human Genetics, 20, 21–40.
25. Zuccarello, D. et al. (2022). Epigenetics of pregnancy: looking beyond the DNA code. Journal of Assisted Reproduction and Genetics, 39, 801–816.
26. Li, S. et al. (2019). Prenatal epigenetics diets play protective roles against environmental pollution. Clinical Epigenetics, 11, 82.
27. Sarkar, D. K. et al. (2019). Persistent changes in stress-regulatory genes in pregnant woman or a child with prenatal alcohol exposure. Alcoholism, Clinical and Experimental Research, 43 (9), 1887–1897.
28. Toledo-Rodriguez, M. et al. (2010). Maternal smoking during pregnancy is associated with epigenetic modifications of the brain-derived neurotrophic factor-6 exon in adolescent offspring. American Journal of Medical Genetics, 153B (7), 1350–1354.
29. WHO (2011). Toxicological and health aspects of bisphenol A. Report of joint FAO/WHO expert meeting. Ottawa, Canada.
Ãëàâà 8. Ïîñëå ðîäîâ óæå ïîçäíî? Î÷åíü ðàííåå óìñòâåííîå ðàçâèòèå
1. Lucas, A. et al. (1992). Breast milk and subsequent intelligence quotient in children born preterm. The Lancet, 339, 261–264.
2. Kramer, M. S. et al. (2008). Breastfeeding and child cognitive development: new evidence from a large randomized trial. Archives of General Psychiatry, 65 (5), 578–584.
3. Horta, B. L. et al. (2015). Breastfeeding and intelligence: a systematic review and meta-analysis. Acta Paediatrica, 104, 14–19.
4. Colen, C. G. & Ramey, D. M. (2014). Is breast truly best? Estimating the effect of breastfeeding on long-term child wellbeing in the United States using sibling comparisons. Social Science and Medicine, 109, 55–65.
5. Bliddal, M. et al. (2014). Maternal pre-pregnancy BMI and intelligence quotient (IQ) in 5-year-old children: a cohort based study. PLoS One, 9 (4), e94498.
6. Eichholzer, M. et al. (2006). Folic acid: a public-health challenge. Lancet, 367, 1352–1361.
7. Bitzer, J. et al. (2013). Women’s awareness and periconceptional use of folic acid: data from a large European study. International Journal of Women’s Health, 5, 201–213.
8. Virdi, S. & Jadavji, N. M. (2022). The impact of maternal folates on brain development and function after birth. Metabolites, 12, 876.
9. Tahaei, H. et al. (2022). Omega-3 fatty acid intake during pregnancy and child neuropsychological development: a multi-centre population-based birth cohort study in Spain. Nutrients, 14 (3), 518.
10. Sherzai, D. et al. (2023). A systematic review of omega-3 fatty acid consumption and cognitive outcomes in neurodevelopment. American Journal of Lifestyle Medicine 17 (5), 649–685.
11. Nevins, J. E. H. et al. (2021). Omega-3 fatty acid dietary supplements consumed during pregnancy and lactation and child neurodevelopment: a systematic review. The Journal of Nutrition, 151 (11), 3483–3494.
12. Khalid, W. et al. (2022). Functional behavior of DHA and EPA in the formation of babies brain at different stages of age, and protect from different brain-related diseases. International Journal of Food Properties, 25 (1), 1021–1044.
13. Cortes-Albornoz, M. C. et al. (2021). Maternal nutrition and neurodevelopment: a scoping review. Nutrients, 13, 3530.
14. Heland, S. et al. (2022). The role of nutrients in human neurodevelopment and their potential to prevent neurodevelopmental adversity. Frontiers in Nutrition, 9, 992120.
15. Rauscher, F. H. et al. (1993). Music and spatial task performance. Nature, 365 (6447), 611.
16. Pietschnig, J. et al. (2010). Mozart effect – Shmozart effect: a meta-analysis. Intelligence, 38, 314–323.
17. Borsani, E. et al. (2019). Correlation between human nervous system development and acquisition of fetal skills: an overview. Brain & Development, 41 (3), 225–233.
18. Kadic, A. S. & Kurjak, A. (2018). Cognitive functions of the fetus. Ultraschall in der Medizin, 39 (2), 181–189.
19. Kisilevsky, B. S. et al. (2004). Maturation of fetal responses to music. Developmental Science, 7 (5), 550–559.
20. He, H. et al. (2021). The effect of prenatal music therapy on fetal and neonatal status: a systematic review and meta-analysis. Complementary Therapies in Medicine, 60, 102756.
21. Moon, C. (2017). Prenatal experience with the maternal voice. In: Early Vocal Contact and Preterm Infant Brain Development, åd. by Filippa, Kuhn, & Westrup; Springer.
22. Carvalho, M. E. S. et al. (2019). The impact of maternal voice on the fetus: a systematic review. Current Women’s Health Reviews, 15, 196–206.
23. Chladkova, K. & Paillereau, N. (2020). The what and when of universal perception: a review of early speech sound acquisition. Language Learning, 70 (4), 1136–1182.
24. Moon, C. et al. (2013). Language experienced in utero affects vowel perception after birth: a two-country study. Acta Paediatrica, 102 (2), 156–160.
25. Mampe, B. et al. (2009). Newborns’ cry melody is shaped by their native language. Current Biology, 19 (23), 1994–1997.
26. Filippa, M. et al. (2021). Maternal speech decreases pain scores and increases oxytocin levels in preterm infants during painful procedures. Scientific Reports, 11, 17301.
27. Chhikara, A. et al. (2023). Effect of maternal voice on proportion of oral feeding in preterm infants. Journal of Perinatology, 43 (1), 68–73.
28. Li, Y. et al. (2023). Effects of maternal sound stimulation on preterm infants: a systematic review and meta-analysis. International Journal of Nursing Practice, 29 (2), e13039.
29. Saliba, S. et al. (2020). Fathers’ and mothers infant directed speech influences preterm infant behavioral state in the NICU. Journal of Nonverbal Behavior, 44, 437–451.
30. Vogl, J. L. et al. (2021). Kangaroo father care: a pilot feasibility study of physiologic, biologic, and psychosocial measures to capture the effects of father-infant and mother-infant skin-to-skin contact in the neonatal intensive care unit. Developmental Psychobiology, 63 (5), 1521–1533.
31. Graven, S. N. & Browne, J. V. (2008). Visual development in the human fetus, infant, and young child. Newborn and Infant Nursing Reviews, 8 (4), 194–201.
32. Wolfe, K. & Ralls, F. M. (2019). Rapid eye movement sleep and neuronal development. Current Opinion in Pulmonary Medicine, 25 (6), 555–560.
33. Donovan, T. et al. (2020). Fetal eye movements in response to a visual stimulus. Brain and Behavior, 10 (8), e01676.
34. Reid, V. M. et al. (2017). The human fetus preferentially engages with face-like visual stimuli. Current Biology, 27, 1825–1828.
35. Sarnat, H. B. et al. (2017). Olfactory development, Part I: function, from fetal perception to adult wine-tasting. Journal of Child Neurology, 32 (6), 566–578.
36. Ustun, B. et al. (2022). Flavor sensing in utero and emerging discriminative behaviors in the human fetus. Psychological Science, 33 (10), 1651–1663.
37. Spahn, J. M. et al. (2019). Influence of maternal diet on flavor transfer to amniotic fluid and breast milk and children’s responses: a systematic review. The American Journal of Clinical Nutrition, 109 (S1), 1003S – 1026S.
Ãëàâà 9. “Ñìîòðè íà êðàñèâîå”: èìåþò ëè çíà÷åíèå ýìîöèè?
1. Beinempaka, F. et al. (2015). Traditional rituals and customs for pregnant women in selected villages in Southwest Uganda. Journal of Obstetrics and Gynaecology Canada, 37 (10), 899–900.
2. Karahan, N. et al. (2017). Traditional health practices concerning pregnancy, birth, and the postpartum period of women giving birth in the hospital. Southern Clinics of Istanbul Eurasia, 28 (3), 190–198.
3. Cai, Q. (2021). Cultural integration and deliberate modification: attempts to reconstruct “Foetal Education” in Early Modern China. Revista Argentina de Clinica Psicologica, 30 (1), 452–462.
4. Hajare, P. et al. (2019). Garbha Sanskar need of every expectant mother for healthy progeny. International Journal of Recent Scientific Research, 10 (11), 36140–36143.
5. Hobson, N. M. et al. (2018). The psychology of rituals: an integrative review and process-based framework. Personality and Social Psychology Review, 22 (3), 260–284.
6. Leotti, L. A. et al. (2010). Born to choose: the origins and value of the need for control. Trends in Cognitive Sciences, 14 (10), 457–463.
7. Ly, V. et al. (2019). A reward-based framework of perceived control. Frontiers in Neuroscience, 13, 65.
8. O’Connor, D. B. et al. (2021). Stress and health: a review of psychobiological processes. Annual Review of Psychology, 72, 663–688.
9. Gomez-Sanchez, E. & Gomez-Sanches, C. (2015). The multifaced mineralocorticoid receptor. Comprehensive Physiology, 4 (3), 965–994.
10. Mifsud, K. R. & Reul, M. H. M. (2018). Mineralocorticoid and glucocorticoid receptor-mediated control of genomic responses to stress in the brain. Stress, 21 (5), 389–402.
11. De Kloet, E. R. & Joels, M. (2023). The cortisol switch between vulnerability and resilience. Molecular Psychiatry [in press].
12. Zhai, Q.-Y. et al. (2020). Review of psychological stress on oocyte and early embryonic development in female mice. Reproductive Biology and Endocrinology, 18, 101.
13. Zhang, S. et al. (2019). Effect of predator stress on the reproductive performance of female mice after nonsurgical embryo transfer. Journal of the American Association for Laboratory Animal Science, 58 (3), 304–310.
14. Zipple, M. N. et al. (2019). Male-mediated prenatal loss: functions and mechanisms. Evolutionary Antropology, 28, 114–125.
15. Toufexis, D. et al. (2014). Stress and the reproductive axis. Journal of Neuroendocrinology, 26 (9), 573–586.
16. Greff, M. J. E. et al. (2019). Hair cortisol analysis: an update on methodological considerations and clinical applications. Clinical Biochemistry, 63, 1–9.
17. Massey, A. J. et al. (2016). Relationship between hair and salivary cortisol and pregnancy in women undergoing IVF. Psychoneuroendocrinology, 74, 397–405.
18. Lynch, C. D. et al. (2014). Preconception stress increases the risk of infertility: results from a couple-based prospective cohort study – the LIFE study. Human Reproduction, 29 (5), 1067–1075.
19. Rooney, K. L. & Domar, A. D. (2018). The relationship between stress and infertility. Dialogues in Clinical Neuroscience, 20 (1), 41–47.
20. Lee, Y. E. et al. (2008). Effect of maternal restraint stress on fetal development of ICR mice. Experimental Animals / Japanese Association for Laboratory Animal Science, 57 (1), 19–25.
21. Golub, M. S. et al. (2004). Effects of restraint stress in gestation: implications for rodent development toxicology studies. Birth Defects Research (Part B), 71, 26–36.
22. Kim, J. et al. (2015). Prenatal stress induces skeletal malformations in mouse embryos. Biomedical Science Letters, 21 (1), 15–22.
23. AlSharif, M. T. et al. (2023). Maternal stress as a risk factor for non-syndromic orofacial clefts: systematic review and meta-analysis. The Saudi Dental Journal, 35 (3), 207–219.
24. Gu, J. & Guan, H.-B. (2021). Maternal psychological stress during pregnancy and risk of congenital heart disease in offspring: a systematic review and meta-analysis. Journal of Affective Disorders, 291, 32–38.
25. Hansen, D. et al. (2000). Serious life events and congenital malformations: a national study with complete follow-up. Lancet, 356 (9233), 875–880.
26. Radojicic, J. et al. (2007). Stress: the risk factor in the lip and palate cleft development. Acta Medica Medianae, 46 (4), 15–19.
27. Mohammed, A. M. et al. (2020). Activities of metabolizing enzymes in human placenta. Toxicology letters, 326, 70–77.
28. Vuppaladhadiam, L. et al. (2021). Human placenta buffers the fetus from adverse effects of perceived maternal stress. Cells, 10, 379.
29. Shapiro, G. D. et al. (2013). Psychosocial stress in pregnancy and preterm birth: associations and mechanisms. Journal of Perinatal Medicine, 41 (6), 631–645.
30. Coussons-Read, M. E. (2013). Effects of prenatal stress on pregnancy and human development: mechanisms and pathways. Obstetric Medicine, 6 (2), 52–57.
31. Traylor, C. S. et al. (2020). Effects of psychological stress on adverse pregnancy outcomes and nonpharmacologic approaches for reduction: an expert review. American Journal of Obstetrics and Gynecology MFM, 2 (4), 100229.
32. Najafzadeh, A. (2016). Stress and preterm birth: biological and vascular mechanisms affecting the feto-placental circulation and the length of gestation. Sonography, 3 (3), 95–102.
33. Hux, V. J. & Roberts, J. M. (2015). A potential role for allostatic load in preeclampsia. Maternal and Child Health Journal, 19 (3), 591–597.
34. Van den Bergh, B. R. H. et al. (2020). Prenatal developmental origins of behavior and mental health: the influence of maternal stress in pregnancy. Neuroscience and Biobehavioral Reviews, 117, 26–64.
35. Lautarescu, A. et al. (2020). Prenatal stress: effects on fetal and child brain development. International Review of Neurobiology, 150, 17–40.
36. Haq, S. U. et al. (2021). Prenatal stress effects on offspring brain and behavior: mediators, alterations and dysregulated epigenetic mechanisms. Journal of Biosciences, 46, 34.
37. King, S. & Laplante, D. P. (2005). The effects of prenatal maternal stress on children’s cognitive development: Project Ice Storm. Stress, 8 (1), 35–35.
38. Laplante, D. P. et al. (2008). Project Ice Storm: prenatal maternal stress affects cognitive and linguistic functioning in 5-year-old children. Journal of the American Academy of Child and Adolescent Psychiatry, 47 (9), 1063–1072.
39. Cao, X. et al. (2014). Prenatal maternal stress affects motor function in 5-year-old children: Project Ice Storm. Developmental Psychobiology, 56 (1), 117–125.
40. Ping, E. Y. et al. (2020). Disaster-related prenatal maternal stress predicts HPA reactivity and psychopathology in adolescent offspring: Project Ice Storm. Psychoneuroendocrinology, 117, 104697.
41. Ramborger, M. E. et al. (2018). Prenatal stress and its effects of human cognition, behavior and psychopathology: a review of the literature. Pediatric Dimensions, 3 (1), 1–6.
42. Davis, E. P. & Narayan, A. J. (2020). Pregnancy as a period of risk, adaptation, and resilience for mothers and infants. Development and Psychopathology, 1625–1639.
43. Corno, G. et al. (2018). Effect of a web-based positive psychology intervention on prenatal well-being: a case series study. Women and birth: journal of the Australian College of Midwives, 31 (1), e1–e8.
44. Schueller, S. M. & Parks, A. C. (2014). The science of self-help. Translating positive psychology research into increased individual happiness. European Psychologist, 19 (2), 145–155.
45. Nolvi, S. et al. (2023). Prenatal stress and the developing brain: postnatal environments promoting resilience. Biological Psychiatry, 93 (10), 942–952.
46. Shreffler, K. M. et al. (2021) Pregnancy intendedness, maternal-fetal bonding, and postnatal maternal-infant bonding. Infant Mental Health Journal, 42 (3), 362–373.
47. Smorti, M. et al. (2020). The mother-child attachment bond before and after birth: the role of maternal perception of traumatic childbirth. Early Human Development, 142, 104956.
48. Massey, S. H. et al. (2015). Maternal-fetal attachment differentiates patterns of prenatal smoking and exposure. Addictive Behaviors, 45, 51–56.
49. Branjerdporn, G. et al. (2017). Associations between maternal-foetal attachment and infant developmental outcomes: a systematic review. Maternal and Child Health Journal, 21 (3), 540–553.
50. Dayton, C. J. et al. (2019). Pathways to parenting: predictors of prenatal bonding in a sample of expectant mothers and fathers exposed to contextual risk. Journal of Child and Family Studies, 28, 1134–1144.
51. Rohder, K. et al. (2020). Maternal-fetal bonding among pregnant women at psychosocial risk: the roles of adult attachment style, prenatal parental reflective functioning, and depressive symptoms. PLoS ONE, 15 (9), e0239208.
52. Tichelman, E. et al. (2019). Correlates of prenatal and postnatal mother-to-infant bonding quality: a systematic review. PLoS ONE, 14 (9), e0222998.
53. Lumley, M. A. (1990). Through a glass darkly: ultrasound and prenatal bonding. Birth, 17 (4), 214–217.
54. De Jong-Pleij, E. A. P. et al. (2013). Three-dimensional ultrasound and maternal bonding, a third trimester study and review. Prenatal Diagnosis, 33, 81–88.
55. Roberts, J. (2012). “Wakey wakey baby”: narrating four-dimensional (4D) bonding scans. Sociology of Health & Illness, 34 (2), 299–314.
56. Abramowicz, J. S. (2008). Bioeffects and safety of 2D and 3D/4D ultrasound in obstetrics – is there a place for “parental bonding” scans? Donald School Journal in Obstetrics and Gynecology, 2 (4), 17–21.
57. Honemeyer, U. & et al. (2014). Pregnancy and loneliness: the therapeutic value of 3D/4D ultrasound. Psychology, 5 (7), 46250.
58. Mohapatra, S. et al. (2021). Effect of fetal movement count training (FMCT) on prenatal bonding and maternal anxiety among primigravida women. International Journal of Nursing Education, 13 (3), 119–124.
59. Shariat, M. & Abedinia, N. (2017). The effect of psychological intervention on mother-infant bonding and breastfeeding. Iranian Journal of Neonatology, 8 (1), 7–15.
60. Valiani, M. & HadiAlijanvand, S. (2021). The effect of fetus stimulation techniques on newborn behavior. Iranian Journal of Nursing and Midwifery Research, 26 (6), 550–554.
61. Wang, Z.-W. et al. (2015). The relationship between gentle tactile stimulation on the fetus and its temperament 3 months after birth. Behavioural Neurology, 2015, 371906.
Êðàòêèé êóðñ áèîëîãèè ðàçâèòèÿ
Îñíîâíîé èñòî÷íèê:
1. Áàðåññè Ì. Äæ. Ô., Ãèëáåðò Ñ. Ô. Áèîëîãèÿ ðàçâèòèÿ / Ïåð. ñ àíãë. ïîä ðåä. ä-ðà áèîë. íàóê À. Â. Âàñèëüåâà. Ì.: Ëàáîðàòîðèÿ çíàíèé, 2022.
Äîïîëíèòåëüíûå èñòî÷íèêè:
2. Winklbauer, R. & Parent, S. E. (2017). Forces driving cell sorting in the amphibian embryo. Mechanisms of Development, 144 (A), 81–91.
3. McNamara, H. C. et al. (2016). A review of the mechanisms and evidence for typical and atypical twinning. American Journal of Obstetrics & Gynecology, 214 (2), 172–191.
4. Bahat, A. et al. (2012). Thermotaxis of human sperm cells in extraordinarily shallow temperature gradients over a wide range. PLoS ONE, 7 (7), e41915.
5. Bianchi, E. & Wright, G. J. (2014). Izumo meets Juno: preventing polyspermy in fertilization. Cell Cycle, 13 (13), 2019–2020.
