Does Prenatal Physical Activity Affect the Occurrence of Postnatal Anxiety and Depression? Longitudinal Study
Abstract
:1. Introduction
2. Materials and Methods
2.1. Participants
2.2. Methods
2.3. Statistical Analysis
3. Results
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Kyu, H.H.; Bachman, V.F.; Alexander, L.T.; Mumford, J.E.; Afshin, A.; Estep, K.; Veerman, J.L.; Delwiche, K.; Iannarone, M.L.; Moyer, M.L.; et al. Physical activity and risk of breast cancer, colon cancer, diabetes, ischemic heart disease, and ischemic stroke events: Systematic review and dose-response meta-analysis for the Global Burden of Disease Study 2013. BMJ 2016, 354, i3857. [Google Scholar] [CrossRef] [Green Version]
- Zhang, Y.P.; Zhao, Y.L.; Sun, Y.L.; Zhu, R.T.; Wang, W.J.; Li, J. Physical Activity and the Risk of Gallstone Disease: A Systematic Review and Meta-analysis. J. Clin. Gastroenterol. 2017, 51, 857–868. [Google Scholar] [CrossRef]
- Aune, D.; Sen, A.; Henriksen, T.; Saugstad, O.D.; Tonstad, S. Physical activity and the risk of gestational diabetes mellitus: A systematic review and dose-response meta-analysis of epidemiological studies. Eur. J. Epidemiol. 2016, 31, 967–997. [Google Scholar] [CrossRef] [Green Version]
- Diaz, K.M.; Shimbo, D. Physical activity and the prevention of hypertension. Curr. Hypertens Rep. 2013, 15, 659–668. [Google Scholar] [CrossRef] [Green Version]
- Vina, J.; Sanchis-Gomar, F.; Martinez-Bello, V.; Gomez-Cabrera, M.C. Exercise acts as a drug; the pharmacological benefits of exercise. Br. J. Pharmacol. 2012, 167, 1–12. [Google Scholar] [CrossRef]
- Evenson, K.R.; Barakat, R.; Brown, W.J.; Dargent-Molina, P.; Haruna, M.; Mikkelsen, E.M.; Mottola, M.F.; Owe, K.M.; Rousham, E.K.; Yeo, S. Guidelines for Physical Activity during Pregnancy: Comparisons From Around the World. Am. J. Lifestyle Med. 2014, 8, 102–121. [Google Scholar] [CrossRef] [Green Version]
- Kliziene, I.; Cizauskas, G.; Sipaviciene, S.; Aleksandraviciene, R.; Zaicenkoviene, K. Effects of a Physical Education Program on Physical Activity and Emotional Well-Being among Primary School Children. Int. J. Environ. Res. Public Health 2021, 18, 7536. [Google Scholar] [CrossRef]
- Bottaccioli, F.; Bottaccioli, A.G.; Marzola, E.; Longo, P.; Minelli, A.; Abbate-Daga, G. Nutrition, Exercise, and Stress Management for Treatment and Prevention of Psychiatric Disorders. A Narrative Review Psychoneuroendocrineimmunology-Based. Endocrines 2021, 2, 226–240. [Google Scholar] [CrossRef]
- Hu, S.; Tucker, L.; Wu, C.; Yang, L. Beneficial Effects of Exercise on Depression and Anxiety During the Covid-19 Pandemic: A Narrative Review. Front. Psychiatry 2020, 4, 587557. [Google Scholar] [CrossRef]
- Kayani, S.; Kiyani, T.; Kayani, S.; Morris, T.; Biasutti, M.; Wang, J. Physical Activity and Anxiety of Chinese University Students: Mediation of Self-System. Int. J. Environ. Res. Public Health 2021, 18, 4468. [Google Scholar] [CrossRef]
- Pfaeffli Dale, L.; Vanderloo, L.; Moore, S.; Faulkner, G. Physical activity and depression, anxiety, and self-esteem in children and youth: An umbrella systematic review. Ment. Health Phys. Act. 2019, 16, 66–79. [Google Scholar] [CrossRef]
- Mendoza-Vasconez, A.S.; Marquez, B.; Linke, S.; Arredondo, E.M.; Marcus, B.H. Effect of physical activity on depression symptoms and perceived stress in Latinas: A mediation analysis. Ment. Health Phys. Act. 2019, 16, 31–37. [Google Scholar] [CrossRef] [PubMed]
- Zlebnik, N.E.; Anker, J.J.; Carroll, M.E. Exercise to reduce the escalation of cocaine self-administration in adolescent and adult rats. Psychopharmacology 2012, 224, 387–400. [Google Scholar] [CrossRef] [Green Version]
- Chen, W.W.; Zhang, X.; Huang, W.J. Role of physical exercise in Alzheimer’s disease. Biomed. Rep. 2016, 4, 403–407. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Ganjeh, P.; Meyer, T.; Hagmayer, Y.; Kuhnert, R.; Ravens-Sieberer, U.; von Steinbuechel, N.; Rothenberger, A.; Becker, A. Physical Activity Improves Mental Health in Children and Adolescents Irrespective of the Diagnosis of Attention Deficit Hyperactivity Disorder (ADHD)-A Multi-Wave Analysis Using Data from the KiGGS Study. Int. J. Environ. Res. Public Health 2021, 24, 2207. [Google Scholar] [CrossRef]
- Soma-Pillay, P.; Nelson-Piercy, C.; Tolppanen, H.; Mebazaa, A. Physiological changes in pregnancy. Cardiovasc. J. Afr. 2016, 27, 89–94. [Google Scholar] [CrossRef] [Green Version]
- Bhatia, P.; Chhabra, S. Physiological and anatomical changes of pregnancy: Implications for anaesthesia. Indian J. Anaesth. 2018, 62, 651–657. [Google Scholar] [CrossRef]
- Motosko, C.C.; Bieber, A.K.; Pomeranz, M.K.; Stein, J.A.; Martires, K.J. Physiologic changes of pregnancy: A review of the literature. Int. J. Womens Dermatol. 2017, 3, 219–224. [Google Scholar] [CrossRef]
- Austin, M.-P.; Lumley, J. Antenatal screening for postnatal depression: A systematic review. Acta Psychiatr. Scand. 2003, 107, 10–17. [Google Scholar] [CrossRef]
- Anokye, R.; Acheampong, E.; Budu-Ainooson, A.; Obeng, E.I.; Akwasi, A.G. Prevalence of postpartum depression and interventions utilized for its management. Ann. Gen. Psychiatry 2018, 17, 18. [Google Scholar] [CrossRef]
- Kołomańska-Bogucka, D.; Mazur-Bialy, A.I. Physical Activity and the Occurrence of Postnatal Depression-A Systematic Review. Medicina 2019, 55, 560. [Google Scholar] [CrossRef] [Green Version]
- Oztora, S.; Arslan, A.; Caylan, A.; Dagdeviren, H.N. Postpartum depression and affecting factors in primary care. Niger. J. Clin. Pract. 2019, 22, 85–91. [Google Scholar] [PubMed]
- O’Connell, M.A.; O’Neill, S.M.; Dempsey, E.; Khashan, A.S.; Leahy-Warren, P.; Smyth, R.M.; Kenny, L.C. Interventions for fear of childbirth (tocophobia). Cochrane Database Syst. Rev. 2019, 2019, CD013321. [Google Scholar] [CrossRef]
- Sioma-Markowska, U.; Żur, A.; Skrzypulec-Plinta, V.; Machura, M.; Czajkowska, M. Causes and frequency of tokophobia—Own experiences. Ginekol. Pol. 2017, 88, 239–243. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Janik, I.; Fabian-Danielewska, A.; Korabiusz, K.; Niedzielska, M.; Wawryków, A. Effect of Physical Activity on Anxiety Levels in Pregnant Women. J. Educ. Health Sport 2017, 7, 684–692. [Google Scholar]
- Aguilar-Cordero, M.J.; Sánchez-García, J.C.; Rodriguez-Blanque, R.; Sánchez-López, A.M.; Mur-Villar, N. Moderate Physical Activity in an Aquatic Environment During Pregnancy (SWEP Study) and Its Influence in Preventing Postpartum Depression. J. Am. Psychiatr. Nurses Assoc. 2019, 25, 112–121. [Google Scholar] [CrossRef]
- Coll, C.V.N.; Domingues, M.R.; Stein, A.; da Silva, B.G.C.; Bassani, D.G.; Hartwig, F.P.; da Silva, I.C.M.; da Silveira, M.F.; da Silva, S.G.; Bertoldi, A.D. Efficacy of Regular Exercise During Pregnancy on the Prevention of Postpartum Depression: The PAMELA Randomized Clinical Trial. JAMA Netw. Open. 2019, 4, e186861. [Google Scholar] [CrossRef]
- O’Connor, E.; Rossom, R.; Henninger, M.; Groom, H.C.; Burda, B.U. Primary Care Screening for and Treatment of Depression in Pregnant and Postpartum Women: Evidence report and systematic review for the US Preventive Services Task Force. JAMA 2016, 315, 388–406. [Google Scholar] [CrossRef] [Green Version]
- Hewitt, C.E.; Gilbody, S.M.; Mann, R.; Brealey, S. Instruments to identify post-natal depression: Which methods have been the most extensively validated, in what setting and in which language? Int. J. Psychiatr. Clin. Pract. 2009, 14, 72–76. [Google Scholar] [CrossRef]
- Cox, J.L.; Holden, J.M.; Sagovsky, R. Detection of Postnatal Depression. Development of the 10-item EdinBurgh Postnatal Depression Scale. Br. J. Psychiatr. 1987, 150, 782–786. [Google Scholar] [CrossRef] [Green Version]
- Kossakowska, K. Edynburska skala depresji poporodowej: Właściwości psychometryczne i charakterystyka. Acta Univ. Lodziensis. Folia Psychol. 2013, 17, 39–50. [Google Scholar]
- Levis, B.; Negeri, Z.; Sun, Y.; Benedetti, A.; Thombs, B.D. Accuracy of the Edinburgh Postnatal Depression Scale (EPDS) for screening to detect major depression among pregnant and postpartum women: Systematic review and meta-analysis of individual participant data. BMJ 2020, 371, m4022. [Google Scholar] [CrossRef] [PubMed]
- Spitzer, R.L.; Kroenke, K.; Williams, J.B.W.; Löwe, B. A Brief Measure for Assessing Generalized Anxiety Disorder: The GAD-7. Arch. Intern. Med. 2006, 166, 1092–1097. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Simpson, W.; Glazer, M.; Michalski, N.; Steiner, M.; Frey, B.N. Comparative efficacy of the generalized anxiety disorder 7-item scale and the Edinburgh Postnatal Depression Scale as screening tools for generalized anxiety disorder in pregnancy and the postpartum period. Can. J. Psychiatry 2014, 59, 434–440. [Google Scholar] [CrossRef] [Green Version]
- Soto-Balbuena, C.; Rodríguez-Muñoz, M.F.; Le, H.N. Validation of the Generalized Anxiety Disorder Screener (GAD-7) in Spanish Pregnant Women. Psicothema 2021, 33, 164–170. [Google Scholar] [CrossRef]
- Zhong, Q.Y.; Gelaye, B.; Zaslavsky, A.M.; Fann, J.R.; Rondon, M.B.; Sánchez, S.E.; Williams, M.A. Diagnostic Validity of the Generalized Anxiety Disorder-7 (GAD-7) among Pregnant Women. PLoS ONE 2015, 27, e0125096. [Google Scholar] [CrossRef]
- Gong, Y.; Zhou, H.; Zhang, Y.; Zhu, X.; Wang, X.; Shen, B.; Xian, J.; Ding, Y. Validation of the 7-item Generalized Anxiety Disorder scale (GAD-7) as a screening tool for anxiety among pregnant Chinese women. J. Affect. Disord. 2021, 1, 98–103. [Google Scholar] [CrossRef]
- Leonard, K.S.; Pauley, A.M.; Hohman, E.E.; Guo, P.; Rivera, D.E.; Savage, J.S.; Buman, M.P.; Downs, D.S. Identifying ActiGraph non-wear time in pregnant women with overweight or obesity. J. Sci. Med. Sport 2020, 23, 1197–1201. [Google Scholar] [CrossRef]
- da Silva, S.G.; Evenson, K.R.; Ekelund, U.; da Silva, I.C.M.; Domingues, M.R.; da Silva, B.G.C.; Mendes, M.D.A.; Cruz, G.I.N.; Hallal, P.C. How many days are needed to estimate wrist-worn accelerometry-assessed physical activity during the second trimester in pregnancy? PLoS ONE 2019, 14, e0211442. [Google Scholar] [CrossRef]
- da Silva, S.G.; Evenson, K.R.; da Silva, I.C.M.; Mendes, M.A.; Domingues, M.R.; da Silveira, M.F.; Wehrmeister, F.C.; Ekelund, U.; Hallal, P.C. Correlates of accelerometer-assessed physical activity in pregnancy—The 2015 Pelotas (Brazil) Birth Cohort Study. Scand. J. Med. Sci. Sports 2018, 28, 1934–1945. [Google Scholar] [CrossRef] [Green Version]
- Rousham, E.; Clarke, P.; Gross, H. Significant changes in physical activity among pregnant women in the UK as assessed by accelerometry and self-reported activity. Eur. J. Clin. Nutr. 2006, 60, 393–400. [Google Scholar] [CrossRef] [PubMed]
- Cooper, A.R.; Goodman, A.; Page, A.S.; Sherar, L.B.; Esliger, D.W.; van Sluijs, E.M.; Andersen, L.B.; Anderssen, S.; Cardon, G.; Davey, R.; et al. Objectively measured physical activity and sedentary time in youth: The International children’s accelerometry database (ICAD). Int. J. Behav. Nutr. Phys. Act. 2015, 12, 113. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Reiner, M.; Niermann, C.; Jekauc, D.; Woll, A. Long-term health benefits of physical activity—A systematic review of longitudinal studies. BMC Public Health 2013, 13, 813. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Ribeiro, M.M.; Andrade, A.; Nunes, I. Physical exercise in pregnancy: Benefits, risks and prescription. J. Perinat. Med. 2021, 50, 4–17. [Google Scholar] [CrossRef] [PubMed]
- Gavin, N.I.; Gaynes, B.N.; Lohr, K.N.; Meltzer-Brody, S.; Gartlehner, G.; Swinson, T. Perinatal depression: A systematic review of prevalence and incidence. Obstet. Gynecol. 2005, 106, 1071–1083. [Google Scholar] [CrossRef] [PubMed]
- Klainin, P.; Arthur, D.G. Postpartum depression in Asian cultures: A literature review. Int J. Nurs. Stud. 2009, 46, 1355–1373. [Google Scholar] [CrossRef]
- Shakeel, N.; Richardsen, K.R.; Martinsen, E.W.; Eberhard-Gran, M.; Slinning, K.; Jenum, A.K. Physical activity in pregnancy and postpartum depressive symptoms in a multiethnic cohort. J. Affect. Disord. 2018, 15, 93–100. [Google Scholar] [CrossRef] [Green Version]
- Nakamura, A.; van der Waerden, J.; Melchior, M.; Bolze, C.; El-Khoury, F.; Pryor, L. Physical activity during pregnancy and postpartum depression: Systematic review and meta-analysis. J. Affect. Disord. 2019, 1, 29–41. [Google Scholar] [CrossRef]
- Susukida, R.; Usuda, K.; Hamazaki, K.; Tsuchida, A.; Matsumura, K.; Nishi, D.; Inadera, H.; Japan Environment and Children’s Study (JECS) Group. Association of prenatal psychological distress and postpartum depression with varying physical activity intensity: Japan Environment and Children’s Study (JECS). Sci. Rep. 2020, 10, 6390. [Google Scholar] [CrossRef] [Green Version]
- Demissie, Z.; Siega-Riz, A.M.; Evensonm, K.R.; Herring, A.H.; Dole, N.; Gaynes, B.N. Associations between physical activity and postpartum depressive symptoms. J. Womens Health. 2011, 20, 1025–1034. [Google Scholar] [CrossRef] [Green Version]
- De Wit, L.; Jelsma, J.G.; van Poppel, M.N.; Bogaerts, A.; Simmons, D.; Desoye, G.; Corcoy, R.; Kautzky-Willer, A.; Harreiter, J.; van Assche, A.; et al. Physical activity, depressed mood and pregnancy worries in European obese pregnant women: Results from the DALI study. BMC Pregnancy Childbirth 2015, 15, 158. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Sánchez-Polán, M.; Silva-Jose, C.; Franco, E.; Nagpal, T.S.; Gil-Ares, J.; Lili, Q.; Barakat, R.; Refoyo, I. Prenatal Anxiety and Exercise. Systematic Review and Meta-Analysis. J. Clin. Med. 2021, 10, 5501. [Google Scholar] [CrossRef] [PubMed]
- Guszkowska, M.; Langwald, M.; Sempolska, K. Does Physical Exercise Help Maintain Mental Health During Pregnancy? A Comparison of Changes in Mental Health in Participants of Physical Exercise Classes and Childbirth Classes. J. Phys. Act. Health 2015, 12, 30–36. [Google Scholar] [CrossRef] [PubMed]
Before the Birth | After the Parturition | 6 Months Following Childbirth | Significance (p) | ||||
---|---|---|---|---|---|---|---|
N | % | N | % | N | % | ||
EPDS | |||||||
0–10 | 177 | 94.7 | 145 | 77.5 | 157 | 84.0 | p < 0.001 * |
>11 | 10 | 5.3 | 42 | 22.5 | 30 | 16.0 | |
Total | 187 | 100.0 | 187 | 100.0 | 187 | 100.0 | |
GAD-7 | |||||||
Mild (0–4 pkt) | 60 | 32.1 | 65 | 34.8 | 112 | 59.9 | p < 0.001 * |
Moderate (5–9 pkt) | 104 | 55.6 | 94 | 50.3 | 61 | 32.6 | |
Moderately severe (10–14 pkt) | 15 | 8.0 | 23 | 12.3 | 14 | 7.5 | |
Severe (15–21 pkt) | 8 | 4.3 | 5 | 2.7 | 0 | 0.0 | |
Total | 187 | 100.0 | 187 | 100.0 | 187 | 100.0 |
Variables | GAD-7 | EPDS | ||||
---|---|---|---|---|---|---|
Before the Birth | After the Parturition | 6 Months Following Childbirth | Before the Birth | After the Parturition | 6 Months Following Childbirth | |
Step counts per day | 0.00 (p = 0.927) | 0.01 (p = 0.916) | 0.10 (p = 0.174) | −0.63 (p < 0.001) | −0.59 (p < 0.001) | −0.73 (p < 0.001) |
Average MVPA per day (min) | 0.01 (p = 0.925) | 0.02 (p = 0.746) | 0.11 (p = 0.126) | −0.43 (p < 0.001) | −0.38 (p < 0.001) | −0.49 (p < 0.001) |
Total MVPA (min) | 0.02 (p = 0.797) | 0.05 (p = 0.494) | 0.11 (p = 0.145) | −0.41 (p < 0.001) | −0.34 (p < 0.001) | −0.44 (p < 0.001) |
% in MVPA | −0.09 (p = 0.235) | −0.06 (p = 0.413) | −0.01 (p = 0.902) | −0.36 (p < 0.001) | −0.34 (p < 0.001) | −0.42 (p < 0.001) |
Sedentary (min) | 0.03 (p = 0.713) | 0.09 (p = 0.199) | 0.05 (p = 0539) | 0.09 (p = 0.196) | 0.19 (p = 0.008) | 0.11 (p = 0.131) |
Light (min) | −0.04 (p = 0.551) | 0.03 (p = 0.645) | 0.06 (p = 0.382) | −0.42 (p < 0.001) | −0.30 (p < 0.001) | −0.40 (p < 0.001) |
Moderate (min) | 0.01 (p = 0.927) | 0.01 (p = 0.852) | 0.09 (p = 0.209) | −0.36 (p < 0.001) | −0.30 (p < 0.001) | −0.41 (p < 0.001) |
Vigorous (min) | 0.02 (p = 0.789) | 0.15 (p = 0.043) | 0.09 (p = 0.245) | −0.23 (p = 0.002) | −0.20 (p = 0.006) | −0.21 (p = 0.005) |
% in Sedentary | 0.03 (p = 0.715) | 0.02 (p = 0.831) | −0.04 (p = 0.617) | 0.33 (p < 0.001) | 0.33 (p < 0.001) | 0.35 (p < 0.001) |
% in Light | −0.08 (p = 0.305) | −0.09 (p = 0.199) | −0.06 (p = 0.400) | −0.22 (p = 0.002) | −0.24 (p = 0.001) | −0.21 (p = 0.004) |
% in Moderate | 0.02 (p = 0.768) | 0.00 (p = 0.966) | 0.08 (p = 0.299) | −0.33 (p < 0.001) | −0.34 (p < 0.001) | −0.40 (p < 0.001) |
% in Vigorous | 0.00 (p = 0.985) | 0.10 (p = 0.177) | 0.04 (p = 0.592) | −0.15 (p = 0.039) | −0.16 (p = 0.027) | −0.13 (p = 0.081) |
EPDS | Before the Birth | After the Parturition | 6 Months Following Childbirth | |||
---|---|---|---|---|---|---|
With Depression >11 | Without Depression 0–10 | With Depression >11 | Without Depression 0–10 | With Depression >11 | Without Depression 0–10 | |
Step counts per day | 4257.27 | 8699.03 | 5710.36 | 9258.39 | 5159.04 | 9092.55 |
Significance (p) | p < 0.001 ** | p < 0.001 * | p < 0.001 ** | |||
Average MVPA per day | 48.93 | 117.54 | 72.18 | 125.94 | 59.99 | 124.16 |
Significance (p) | p = 0.003 ** | p < 0.001 ** | p < 0.001 ** | |||
Average sedentary activity per day | 980.84 | 588.50 | 752.76 | 567.98 | 792.92 | 574.43 |
Significance (p) | p = 0.005 ** | p = 0.007 ** | p = 0.002 ** |
GAD−7 | Before the Birth | After the Parturition | 6 Months Following Childbirth | |||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|
Mild (0–4) | Moderate (5–9) | Moderately Severe (10–14) | Severe (15–21) | Mild (0–4) | Moderate (5–9) | Moderately Severe (10–14) | Severe (15–21) | Mild (0–4) | Moderate (5–9) | Moderately Severe (10–14) | Severe (15–21) | |
Step counts per day | 8592.3 | 8452.9 | 8009.9 | 8438.8 | 8221.2 | 8567.0 | 9471.9 | 7148.92 | 8305.5 | 8792.9 | 8265.5 | - |
Significance (p) | p = 0.846 * | p = 0.250 * | p = 0.206 * | |||||||||
Average MVPA per day | 114.3 | 111.4 | 113.2 | 144.0 | 116.6 | 104.8 | 131.1 | 101.6 | 107.8 | 119.4 | 138.5 | - |
Significance (p) | p = 0.932 * | p = 0.558 * | p = 0.524 * | |||||||||
Average sedentary activity per day | 574.9 | 627.8 | 657.0 | 542.2 | 659.5 | 562.9 | 483.6 | 854.5 | 597.3 | 627.8 | 627.2 | - |
Significance (p) | p = 0.887 * | p = 0.020 * | p = 0.946 * |
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations. |
© 2022 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Baran, J.; Kalandyk-Osinko, K.; Baran, R. Does Prenatal Physical Activity Affect the Occurrence of Postnatal Anxiety and Depression? Longitudinal Study. Int. J. Environ. Res. Public Health 2022, 19, 2284. https://doi.org/10.3390/ijerph19042284
Baran J, Kalandyk-Osinko K, Baran R. Does Prenatal Physical Activity Affect the Occurrence of Postnatal Anxiety and Depression? Longitudinal Study. International Journal of Environmental Research and Public Health. 2022; 19(4):2284. https://doi.org/10.3390/ijerph19042284
Chicago/Turabian StyleBaran, Joanna, Katarzyna Kalandyk-Osinko, and Rafał Baran. 2022. "Does Prenatal Physical Activity Affect the Occurrence of Postnatal Anxiety and Depression? Longitudinal Study" International Journal of Environmental Research and Public Health 19, no. 4: 2284. https://doi.org/10.3390/ijerph19042284
APA StyleBaran, J., Kalandyk-Osinko, K., & Baran, R. (2022). Does Prenatal Physical Activity Affect the Occurrence of Postnatal Anxiety and Depression? Longitudinal Study. International Journal of Environmental Research and Public Health, 19(4), 2284. https://doi.org/10.3390/ijerph19042284