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dc.contributor.authorKoníková, Linda
dc.contributor.authorLiczbińska, Grażyna
dc.date.accessioned2026-10-05T09:37:10Z
dc.date.available2026-10-05T09:37:10Z
dc.date.issued2026-09-16
dc.identifier.issn1898-6773
dc.identifier.urihttp://hdl.handle.net/11089/59449
dc.description.abstractObjectiveThis study examined how parental age, family context, and historical stressors relate to variation in craniofacial and body dimensions among male cadets from pre-World War II Lviv. Materialand Methods The sample included 365 male cadets measured in Lviv in 1938. Using Spearman correlations, Mann- Whitney U tests, and Generalized Additive Models with covariate adjustment, we tested whether parental age differences, socioeconomic factors, early-life stress, and family mortality predicted variation in fifteen anthropometric dimensions. Results Parental ages were strongly correlated, consistent with age-assortative mating. Larger parental age differences were associated with smaller jaw width, shorter head length, and variation in craniofacial shape, whereas advancing paternal age was associated with smaller jaw width and variation in overall craniofacial size. Maternal age showed only weak, non-significant trends. Higher parental occupational status predicted greater body height and weight. Variation in body height, nasal height, and overall craniofacial size was also related to sibling mortality. Cohorts corresponding to the periods of World War I and the Spanish flu exhibited smaller jaw width and lower body mass. Despite substantial parental mortality, no significant anthropometric differences were observed between individuals with known and unknown parental-age data. Conclusions Associations between parental age variables and offspring anthropometry were generally weak and limited to specific craniofacial traits. Future research using larger and more diverse samples is needed to determine whether the observed patterns reflect general biological processes or are specific to this cohort.en
dc.language.isoen
dc.publisherWydawnictwo Uniwersytetu Łódzkiegopl
dc.relation.ispartofseriesAnthropological Review;3en
dc.rights.urihttps://creativecommons.org/licenses/by-nc-nd/4.0
dc.subjectparental age differenceen
dc.subjectanthropometryen
dc.subjectearly-life stressen
dc.titleThe role of parental age, family dynamics, and historical adversity in craniofacial variation of pre-World War II cadetsen
dc.typeArticle
dc.page.number69-80
dc.contributor.authorAffiliationKoníková, Linda - Department of Anthropology, Faculty of Science, Masaryk University, Brno, Czech Republicen
dc.contributor.authorAffiliationLiczbińska, Grażyna - Institute of Human Biology and Evolution, Faculty of Biology, Adam Mickiewicz University, Poznań, Polanden
dc.identifier.eissn2083-4594
dc.referencesBlake, J. (1981). Family size and the quality of children. Demography, 18(4), 421–442.en
dc.referencesBogin, B. (2021). Social-economic-political-emotional (SEPE) factors regulate human growth. Human Biology and Public Health, 1. https://doi.org/10.52905/hbph.v1.10en
dc.referencesBradley, R., & Corwyn, R. (2002). Socioeconomic status and child development. Annual Review of Psychology, 53, 371–399. https://doi.org/10.1146/annurev.psych.53.100901.135233en
dc.referencesBuss, D. M. (1989). Sex differences in human mate preferences: Evolutionary hypotheses tested in 37 cultures. Behavioral and Brain Sciences, 12(1), 1–14. https://doi.org/10.1017/S0140525X00023992en
dc.referencesD’Onofrio, B. M., Rickert, M. E., Frans, E., Kuja-Halkola, R., Almqvist, C., Sjölander, A., Larsson, H., & Lichtenstein, P. (2014). Paternal age at childbearing and offspring psychiatric and academic morbidity. JAMA Psychiatry, 71(4), 432–438. https://doi.org/10.1001/jamapsychiatry.2013.4525en
dc.referencesEpstein, E., & Guttman, R. (1984). Mate selection in man: Evidence, theory, and outcome. Biodemography and Social Biology, 31(3–4), 243–278. https://doi.org/10.1080/19485565.1984.9988579en
dc.referencesEveleth, P. B., & Tanner, J. M. (1990). Worldwide variation in human growth. 2 nd ed. Cambridge University Press.en
dc.referencesGeary, D. C., Vigil, J., & Byrd-Craven, J. (2004). Evolution of human mate choice. Journal of Sex Research, 41(1), 27–42. https://doi.org/10.1080/00224490409552211en
dc.referencesHallgrímsson, B., Lieberman, D. E., Liu, W., Ford-Hutchinson, A. F., & Jirik, F. R. (2007). Epigenetic interactions and the structure of phenotypic variation in the cranium. Evolution & Development, 9(1), 76–91. https://doi.org/10.1111/j.1525-142X.2006.00139.xen
dc.referencesHill, K., & Kaplan, H. (1999). Life history traits in humans: Theory and empirical studies. Annual Review of Anthropology, 28(1), 397–430. https://doi.org/10.1146/annurev.anthro.28.1.397en
dc.referencesJenkins, T. G., Aston, K. I., Pflueger, C., Cairns, B. R., & Carrell, D. T. (2014). Age-associated sperm DNA methylation alterations: Possible implications in offspring disease susceptibility. PLoS Genetics, 10(7), e1004458. https://doi.org/10.1371/journal.pgen.1004458en
dc.referencesJohnson, S. L., Dunleavy, J., Gemmell, N. J., & Nakagawa, S. (2015). Consistent age-dependent declines in human semen quality: A systematic review and meta-analy sis. Ageing Research Reviews, 19, 22–33. https://doi.org/10.1016/j.arr.2014.10.007en
dc.referencesJolly, M., Sebire, N., Harris, J., Robinson, S., & Regan, L. (2000). The risks associated with pregnancy in women aged 35 years or older. Human Reproduction, 15(11), 2433–2437. https://doi.org/10.1093/humrep/15.11.2433en
dc.referencesKong, A., Frigge, M. L., Masson, G., Besenbacher, S., Sulem, P., Magnusson, G., Gudjonsson, S. A., Sigurdsson, A., Jonasdottir, A., Jonasdottir, A., Wong, W. S. W., Sigurdsson, G., Walters, G. B., Steinberg, S., Helgason, H., Thorleifsson, G., Gudbjartsson, D. F., Helgason, A., Magnusson, O. T., … Stefansson, K. (2012). Rate of de novo mutations and the importance of father’s age to disease risk. Nature, 488(7412), 471– 475. https://doi.org/10.1038/nature11396en
dc.referencesLean, S. C., Derricott, H., Jones, R. L., & Heazell, A. E. P. (2017). Advanced maternal age and adverse pregnancy outcomes: A systematic review and meta-analysis. PLOS ONE, 12(10), e0186287. https://doi.org/10.1371/journal.pone.0186287en
dc.referencesLiu, Y., Zhi, M., & Li, X. (2011). Parental age and characteristics of the offspring. Ageing Research Reviews, 10(1), 115–123. https://doi.org/10.1016/j.arr.2010.09.004en
dc.referencesLuo, S. (2017). Assortative mating and couple similarity: Patterns, mechanisms, and consequences. Social and Personality Psychology Compass, 11(8), e12337. https://doi.org/10.1111/spc3.12337en
dc.referencesMartínez-Abadías, N., Mitteroecker, P., Parsons, T. E., Esparza, M., Sjøvold, T., Rolian, C., Richtsmeier, J. T., & Hallgrímsson, B. (2012). The developmental basis of quantitative craniofacial variation in humans and mice. Evolutionary Biology, 39(4), 554–567. https://doi.org/10.1007/s11692-012-9210-7en
dc.referencesMazumder, B., Almond, D., Park, K., Crimmins, E. M., & Finch, C. E. (2010). Lingering prenatal effects of the 1918 influenza pandemic on cardiovascular disease. Journal of Developmental Origins of Health and Disease, 1(1), 26–34. https://doi.org/10.1017/S2040174409990031en
dc.referencesMyrskylä, M., & Fenelon, A. (2012). Maternal age and offspring adult health: Evidence from the health and retirement study. Demography, 49(4), 1231–1257. https://doi.org/10.1007/s13524-012-0132-xen
dc.referencesPalloni, A., McEniry, M., Huangfu, Y., & Beltran-Sanchez, H. (2020). Impacts of the 1918 flu on survivors’ nutritional status: A double quasi-natural experiment. PLOS ONE, 15(10), e0232805. https://doi.org/10.1371/journal.pone.0232805en
dc.referencesPinheiro, R. L., Areia, A. L., Mota Pinto, A., & Donato, H. (2019). Advanced maternal age: Adverse outcomes of pregnancy, a meta-analysis. Acta Medica Portuguesa, 32(3), 219– 226. https://doi.org/10.20344/amp.11057en
dc.referencesPreston, S. H., & Haines, M. R. (1991). Fatal years: Child mortality in late nineteenth-century America. Princeton University Press.en
dc.referencesScheinkönig, A., & Kowalczewski, A. (1934). Spis gmin miejskich i wiejskich Rzeczypospolitej Polskiej. Warszawa: Samorządowy Instytut Wydawniczy.en
dc.referencesSpuhler, J. N. (1968). Assortative mating with respect to physical characteristics. Eugenics Quarterly, 15(2), 128–140. https://doi.org/10.1080/19485565.1968.9987763en
dc.referencesSzturm de Sztrem, E. (1931). Drugi powszechny spis ludności z dn. 9 XII 1931 r.: Polska – Stosunki zawodowe, ludność poza rolnictwem (część 1), Z. 94c. Warszawa: Główny Urząd Statystyczny Rzeczypospolitej Polskiej.en
dc.referencesTarín, J. J., Brines, J., & Cano, A. (1998). Long-term effects of delayed parenthood. Human Reproduction, 13(9), 2371–2376. https://doi.org/10.1093/humrep/13.9.2371en
dc.referencesUlijaszek, S. J., Johnston, F. E., & Preece, M. A. (Eds.). (1998). The Cambridge encyclopedia of human growth and development. Cambridge University Press.en
dc.referencesWokroj, F. (1949). Korpus Kadetów Nr 1 pod względem rozwoju fizycznego i zróżnicowania antropologicznego. Przegląd Antropologiczny 16, 34 –82.en
dc.referencesWyszczelski, L., & Niewęgłowska, A. (2016). Korpusy kadetów w Polsce (1918–1939). Kwartalnik “Bellona”, 686(3). 167–182.en
dc.referencesZhang, C., Yan, L., & Qiao, J. (2022). Effect of advanced parental age on pregnancy outcome and offspring health. Journal of Assisted Reproduction and Genetics, 39(9), 1969–1986. https://doi.org/10.1007/s10815-022-02533-wen
dc.contributor.authorEmailKoníková, Linda - konikova@mail.muni.cz
dc.contributor.authorEmailLiczbińska, Grażyna - grazyna.liczbinska@amu.edu.pl
dc.identifier.doi10.18778/1898-6773.89.3.05
dc.relation.volume89


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