Age-related differences in cranial sexual dimorphism in contemporary Europe

. 2021 Sep ; 135 (5) : 2033-2044. [epub] 20210301

Jazyk angličtina Země Německo Médium print-electronic

Typ dokumentu časopisecké články

Perzistentní odkaz   https://www.medvik.cz/link/pmid33649866

Grantová podpora
1590218 Grantová Agentura, Univerzita Karlova

Odkazy

PubMed 33649866
DOI 10.1007/s00414-021-02547-6
PII: 10.1007/s00414-021-02547-6
Knihovny.cz E-zdroje

Biomechanical load and hormonal levels tended to change just like the soft and skeletal tissue of the elderly with age. Although aging in both sexes shared common traits, it was assumed that there would be a reduction of sexual dimorphism in aged individuals. The main goals of this study were (1) to evaluate age-related differences in cranial sexual dimorphism during senescence, (2) to determine age-related differences in female and male skulls separately, and (3) to compare skull senescence in Czech and French adult samples as discussed by Musilová et al. (Forensic Sci Int 269:70-77, 2016). The cranial surface was analyzed using coherent point drift-dense correspondence analysis. The study sample consisted of 245 CT scans of heads from recent Czech (83 males and 59 females) and French (52 males and 51 females) individuals. Virtual scans in the age range from 18 to 92 years were analyzed using geometric morphometrics. The cranial form was significantly greater in males in all age categories. After size normalization, sexual dimorphism of the frontal, occipital, and zygomatic regions tended to diminish in the elderly. Its development during aging was caused by morphological changes in both female and male skulls but secular changes must also be taken into account. The most notable aging changes were the widening of the neurocranium and the retrusion of the face, including the forehead, especially after the age of 60 in both sexes. Sexual dimorphism was similar between the Czech and French samples but its age-related differences were partially different because of the population specificity. Cranial senescence was found to degrade the accuracy of sex classification (92-94%) in the range of 2-3%.

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Verhoff M, Ramsthaler F (2017) Current practice of forensic anthropology on dead bodies. In: Ferrara S (ed) Medicine and justice: innovation, unitariness and evidence. Springer International Publishing, Cham, pp 146–165 DOI

Langley NR, Tersigni-Tarrant MA (2017) Forensic anthropology: a comprehensive introduction, 2nd edn. CRC Press, Boca Raton DOI

Latham K, Bartelink E, Finnegan M (2017) New perspectives in forensic human skeletal identification, 1st edn. Academic Press, London

Guo G, Dyer CR, Fu Y, Huang TS (2009) Is gender recognition affected by age? In: 2009 IEEE 12th International Conference on Computer Vision Workshops, ICCV Workshops. pp 2032–2039

Spradley MK (2016) Metric methods for the biological profile in forensic anthropology: sex, ancestry, and stature. Acad Forensic Pathol 6:391–399 PubMed DOI PMC

Noble J, Cardini A, Flavel A, Franklin D (2019) Geometric morphometrics on juvenile crania: exploring age and sex variation in an Australian population. Forensic Sci Int 294:57–68 PubMed DOI

Novotný V, Iscan M, Loth S (1993) Morphologic and osteometric assessment of age, sex and race from the skull. In: Iscan M, Helmer R (eds) Forensic analysis of the skull: craniofacial analysis, reconstruction, and identification. Wiley-Liss, New York, pp 71–88

Brůžek J, Murail P (2006) Methodology and reliability of sex determination from the skeleton. In: Schmitt A, Cunha E, Pinheiro J (eds) Forensic anthropology and medicine: complementary sciences from recovery to cause of death. Humana Press Inc., Totowa, pp 225–242 DOI

Klepinger LL (2006) Assignment of sex. In: Cartmill M, Brown K (eds) Fundamentals of forensic anthropology. Wiley-Liss, Hoboken, pp 25–42 DOI

Brůžek J, Santos F, Dutailly B, Murail P, Cunha E (2017) Validation and reliability of the sex estimation of the human os coxae using freely available DSP2 software for bioarchaeology and forensic anthropology. Am J Phys Anthropol 164:440–449 PubMed DOI PMC

Spradley MK, Jantz RL (2011) Sex estimation in forensic anthropology: skull versus postcranial elements. J Forensic Sci 56:289–296 PubMed DOI PMC

France DL (1998) Observation and metric analysis of sex in the skeleton. In: Reichs K (ed) Forensic osteology: advances in the identification of human remains. Charles C Thomas, Springfield, pp 163–186

Stock M (2020) Analyses of the postcranial skeleton for sex estimation. In: Klales AR (ed) Sex estimation of the human skeleton. Academic Press, New York, pp 113–130 DOI

Jantz R, Ousley SD (2020) Sexual dimorphism variation in Fordisc samples. In: Klales AR (ed) Sex estimation of the human skeleton. Academic Press, New York, pp 185–200 DOI

Musilová B, Dupej J, Velemínská J, Chaumoitre K (2016) Exocranial surfaces for sex assessment of the human cranium. Forensic Sci Int 269:70–77 PubMed DOI PMC

Musilová B, Dupej J, Brůžek J, Bejdová Š, Velemínská J (2019) Sex and ancestry related differences between two Central European populations determined using exocranial meshes. Forensic Sci Int 297:364–369 PubMed DOI PMC

Rösing FW, Graw M, Marré B, Ritz-Timme S, Rothschild MA, Rötzscher K, Schmeling A, Schröder I, Geserick G (2007) Recommendations for the forensic diagnosis of sex and age from skeletons. Homo 58:75–89 PubMed DOI PMC

Kotěrová A, Velemínská J, Dupej J, Brzobohatá H, Pilný A, Brůžek J (2016) Disregarding population specificity: its influence on the sex assessment methods from the tibia. Int J Legal Med 131:251–261 PubMed DOI PMC

Oikonomopoulou E-K, Valakos E, Nikita E (2017) Population-specificity of sexual dimorphism in cranial and pelvic traits: evaluation of existing and proposal of new functions for sex assessment in a Greek assemblage. Int J Legal Med 131:1731–1738 PubMed DOI PMC

Frayer DW, Wolpoff MH (1985) Sexual dimorphism. Annu Rev Anthropol 14:429–473 DOI

Plavcan JM (2001) Sexual dimorphism in primate evolution. Am J Phys Anthropol 116:25–53 DOI

Guyomarc’h P, Velemínská J, Sedlak P et al (2016) Impact of secular trends on sex assessment evaluated through femoral dimensions of the Czech population. Forensic Sci Int 262:284.e1–284.e6 DOI

Jantz RL, Meadows Jantz L (2000) Secular change in craniofacial morphology. Am J Hum Biol 12:327–338 PubMed DOI PMC

Manthey L, Jantz RL, Bohnert M, Jellinghaus K (2017) Secular change of sexually dimorphic cranial variables in Euro-Americans and Germans. Int J Legal Med 131:1113–1118 PubMed DOI PMC

Jellinghaus K, Hoeland K, Hachmann C, Prescher A, Bohnert M, Jantz R (2018) Cranial secular change from the nineteenth to the twentieth century in modern German individuals compared to modern Euro-American individuals. Int J Legal Med 132:1477–1484 PubMed DOI PMC

Langley NR, Jantz RL (2020) Secular change. In: Klales A (ed) Sex estimation of the human skeleton. Academic Press, New York, pp 295–306 DOI

Patterson M, Tallman S (2019) Cranial and postcranial metric sex estimation in modern Thai and ancient native American individuals. Forensic Anthropol 2:233–252 DOI

Albert AM, Ricanek K, Patterson E (2007) A review of the literature on the aging adult skull and face: implications for forensic science research and applications. Forensic Sci Int 172:1–9 PubMed DOI PMC

Enlow DH, Hans M (2008) Essentials of facial growth, 2nd edn. Needham, Ann Arbor

Krishan K, Chatterjee PM, Kanchan T, Kaur S, Baryah N, Singh RK (2016) A review of sex estimation techniques during examination of skeletal remains in forensic anthropology casework. Forensic Sci Int 261:165.e1–165.e8 DOI

Ross AH, Williams SE (2010) Craniofacial growth, maturation, and change: teens to midadulthood. J Craniofac Surg 21:458–461 PubMed DOI

Mendelson B, Wong C-H (2012) Changes in the facial skeleton with aging: implications and clinical applications in facial rejuvenation. Aesthet Plast Surg 36:753–760 DOI

Atkinson M (2013) Anatomy for dental students, 4th edn. University Press, Oxford DOI

Pessa JE (2000) An algorithm of facial aging: verification of lambros’s theory by three-dimensional stereolithography, with reference to the pathogenesis of midfacial aging, scleral show, and the lateral suborbital trough deformity. Plast Reconstr Surg 106:479–488 PubMed DOI

Urban JE, Weaver AA, Lillie EM, Maldjian JA, Whitlow CT, Stitzel JD (2016) Evaluation of morphological changes in the adult skull with age and sex. J Anat 229:838–846 PubMed DOI

Robertson JM, Kingsley BE, Ford GC (2017) Sexually dimorphic faciometrics in humans from early adulthood to late middle age: dynamic, declining, and differentiated. Evol Psychol 15:1474704917730640 PubMed DOI

Oddie TH, Meade JRJH, Fisher DA (1966) An analysis of published data on thyroxine turnover in human subjects. J Clin Endocrinol Metab 26:425–436 PubMed DOI

Caspi Y, Brouwer RM, Schnack HG, van de Nieuwenhuijzen ME, Cahn W, Kahn RS, Niessen WJ, van der Lugt A, Pol HH (2020) Changes in the intracranial volume from early adulthood to the sixth decade of life: a longitudinal study. Neuroimage 116842

Cotofana S, Mian A, Sykes JM, Redka-Swoboda W, Ladinger A, Pavicic T, Schenck TL, Benslimane F, Ingallina F, Schlattau A (2017) An update on the anatomy of the forehead compartments. Plast Reconstr Surg 139:864e–872e PubMed DOI

Sowell ER, Peterson BS, Thompson PM, Welcome SE, Henkenius AL, Toga AW (2003) Mapping cortical change across the human life span. Nat Neurosci 6:309–315 PubMed DOI

Urban JE, Whitlow CT, Edgerton CA, Powers AK, Maldjian JA, Stitzel JD (2012) Motor vehicle crash-related subdural hematoma from real-world head impact data. J Neurotrauma 29:2774–2781 PubMed DOI PMC

Clarke B (2008) Normal bone anatomy and physiology. Clin J Am Soc Nephrol 3:S131–S139 PubMed DOI PMC

Lillie EM, Urban JE, Lynch SK, Weaver AA, Stitzel JD (2016) Evaluation of skull cortical thickness changes with age and sex from computed tomography scans. J Bone Miner Res 31:299–307 PubMed DOI

Shaw RBJ, Kahn DM (2007) Aging of the midface bony elements: a three-dimensional computed tomographic study. Plast Reconstr Surg 119:675–681 PubMed DOI

Richard MJ, Morris C, Deen BF, Gray L, Woodward JA (2009) Analysis of the anatomic changes of the aging facial skeleton using computer-assisted tomography. Ophthalmic Plast Reconstr Surg 25:382–386 PubMed DOI

Shaw RBJ, Katzel EB, Koltz PF, Yaremchuk MJ, Girotto JA, Kahn DM, Langstein HN (2011) Aging of the facial skeleton: aesthetic implications and rejuvenation strategies. Plast Reconstr Surg 127:374–383 PubMed DOI

Frank K, Gotkin RH, Pavicic T, Morozov SP, Gombolevskiy VA, Petraikin AV, Movsisyan TV, Koban KC, Hladik C, Cotofana S (2018) Age and gender differences of the frontal bone: a computed tomographic (CT)-based study. Aesthet Surg J 39:699–710 DOI

Krogman WE, İşcan M (1986) The human skeleton in forensic medicine. Charles C Thomas, Springfield

Meindl RS, Lovejoy CO, Mensforth RP, Carlos LD (1985) Accuracy and direction of error in the sexing of the skeleton: implications for paleodemography. Am J Phys Anthropol 68:79–85 PubMed DOI

Mydlová M, Dupej J, Koudelová J, Velemínská J (2015) Sexual dimorphism of facial appearance in ageing human adults: a cross-sectional study. Forensic Sci Int 257:519.e1–519.e9 DOI

Lesciotto K, Doershuk L (2018) Effect of age on nonmetric cranial traits for sex estimation in adults. Forensic Anthropol 1:150–159 DOI

Walker P (1995) Problems of preservation and sexism in sexing: some lessons from historical collections for palaeodemographers. In: Saunders SR, Herring A (eds) Grave reflections: portraying the past through cemetery studies. Canadian Scholars’ Press, Toronto, p 48

Brickley M (2004) Determination of sex from archaeological skeletal material and assessment of parturition. In: Brickley M, McKinley JI (eds) Guidelines to the standards for recording human remains. BABAO, Southampton, pp 23–25

Naparstek M (2014) Masculinization of female crania: the effects of age on non-metric sex estimation accuracy of the skull. Master thesis. Texas state university

Gapert R, Black S, Last J (2013) Test of age-related variation in the craniometry of the adult human foramen magnum region: implications for sex determination methods. Forensic Sci Med Pathol 9:478–488 PubMed DOI PMC

Dupej J, Krajíček V, Pelikán J (2015) Low-rank matrix approximations for coherent point drift. Pattern Recogn Lett 52:53–58 DOI

Doual JM, Ferri J, Laude M (1997) The influence of senescence on craniofacial and cervical morphology in humans. Surg Radiol Anat 19:175–183 PubMed DOI PMC

Algee-Hewitt BFB (2017) Age estimation in modern forensic anthropology. In: Langley N, Tersigni-Tarrant MA (eds) Forensic anthropology: a comprehensive introduction, second. CRC Press, Boca Raton, pp 381–419

Pfitzner W, Sozial-anthropologische Studien: I. (1899) Der Einfluss des Lebensalters auf die anthropologischen Charakter. Z Morphol Anthr 1:325

Hellman M (1927) Changes in the human face brought about by development. Am J Orthod Dentofac Orthop 13:475–516

Behrents RG (1985) Growth in the aging craniofacial skeleton, Monograph 17, Craniofacial Growth Series. Center for Human Growth and Development. University of Michigan, Ann Arbor

Bartlett SP, Grossman R, Whitaker LA (1992) Age-related changes of the craniofacial skeleton: an anthropometric and histologic analysis. Plast Reconstr Surg 90:592–600 PubMed DOI PMC

Chovalopoulou M-E, Bertsatos A, Papageorgopoulou C (2017) Age-related changes in the craniofacial region in a modern Greek population sample of known age and sex. Int J Legal Med 131:1103–1111 PubMed DOI PMC

Nikita E, Michopoulou E (2018) A quantitative approach for sex estimation based on cranial morphology. Am J Phys Anthropol 165:507–517 PubMed DOI PMC

Weiss KM (1972) On the systematic bias in skeletal sexing. Am J Phys Anthropol 37:239–249 PubMed DOI PMC

Susanne C, Guidotti A, Hauspie R (1985) Age changes of skull dimensions. Anthropol Anz 43:31–36 PubMed PMC

Masotti S, Succi-Leonelli E, Gualdi-Russo E (2013) Cremated human remains: is measurement of the lateral angle of the meatus acusticus internus a reliable method of sex determination? Int J Legal Med 127:1039–1044 PubMed DOI PMC

Bigoni L, Velemínská J, Brůžek J (2010) Three-dimensional geometric morphometric analysis of cranio-facial sexual dimorphism in a Central European sample of known sex. HOMO 61:16–32 PubMed DOI PMC

Lee MK, Sakai O, Spiegel JH (2010) CT measurement of the frontal sinus–gender differences and implications for frontal cranioplasty. J Cranio-Maxillofacial Surg 38:494–500 DOI

Čechová M, Dupej J, Brůžek J, Bejdová Š, Horák M, Velemínská J (2019) Sex estimation using external morphology of the frontal bone and frontal sinuses in a contemporary Czech population. Int J Legal Med 133:1285–1294 PubMed DOI

Avelar LE, Cardoso MA, Bordoni LS, de Miranda AL, de Miranda Avelar JV (2017) Aging and sexual differences of the human skull. Plast Reconstr surgery Glob open 5:e1297–e1297 DOI

Pecora NG, Baccetti T, McNamara JA (2008) The aging craniofacial complex: a longitudinal cephalometric study from late adolescence to late adulthood. Am J Orthod Dentofac Orthop 134:496–505 DOI

Bishara SE, Treder JE, Jakobsen JR (1994) Facial and dental changes in adulthood. Am J Orthod Dentofac Orthop 106:175–186 DOI

Crockett JC, Rogers MJ, Coxon FP et al (2011) Bone remodelling at a glance. J Cell Sci 124:991 LP–991998 DOI

Velemínská J, Dupej J, Brůžek J, Poláček L, Velemínský P (2019) Asymmetry of cranial surface in relation to social stratification in Great Moravia (Early Medieval Period, Mikulčice, Czech Republic, 9th–10th Century). In: 84th Annual Meeting of the Society for American Archaeology. Albuquerque

Boere-Boonekamp MM, van der Linden-Kuiper LT (2001) Positional preference: prevalence in infants and follow-up after two years. Pediatrics 107:339–343 PubMed DOI

McGarry A, Dixon MT, Greig RJ, Hamilton DRL, Sexton S, Smart H (2008) Head shape measurement standards and cranial orthoses in the treatment of infants with deformational plagiocephaly. Dev Med Child Neurol 50:568–576 PubMed DOI

LeBoff M, Glowacki J (1999) Sex steroids, bone, and aging. In: Rosen C, Glowacki J, Bilezikian J (eds) The aging skeleton. Academic Press, London, pp 159–174 DOI

Kilroy G, Tallman S, Digangi EA (2020) Secular change in morphological cranial and mandibular trait frequencies in European Americans born 1824–1987. Am J Phys Anthropol 173:589–605 PubMed DOI

Bejdová Š, Dupej J, Krajíček V, Velemínská J, Velemínský P (2018) Stability of upper face sexual dimorphism in central European populations (Czech Republic) during the modern age. Int J Legal Med 132:321–330 PubMed DOI PMC

Beals KL, Smith CL, Dodd SM, Angel JL, Armstrong E, Blumenberg B, Girgis FG, Turkel S, Gibson KR, Henneberg M, Menk R, Morimoto I, Sokal RR, Trinkaus E (1984) Brain size, cranial morphology, climate, and time machines [and comments and reply]. Curr Anthropol 25:301–330 DOI

Yang W, Liu X, Wang K et al (2019) Sex determination of three-dimensional skull based on improved backpropagation neural network. Comput Math Methods Med 2019:9163547 PubMed PMC

Bewes J, Low A, Morphett A, Pate FD, Henneberg M (2019) Artificial intelligence for sex determination of skeletal remains: application of a deep learning artificial neural network to human skulls. J Forensic Legal Med 62:40–43 DOI

Franklin D, Cardini A, Flavel A, Kuliukas A (2012) The application of traditional and geometric morphometric analyses for forensic quantification of sexual dimorphism: preliminary investigations in a Western Australian population. Int J Legal Med 126:549–558 PubMed DOI

Small C, Schepartz L, Hemingway J, Brits D (2018) Three-dimensionally derived interlandmark distances for sex estimation in intact and fragmentary crania. Forensic Sci Int 287:127–135 PubMed DOI

Ibrahim A, Alias A, Shafie MS, Nor FM (2019) Application of three dimensional geometric morphometric analysis for sexual dimorphism of human skull: a systematic review. IIUM Med J Malaysia 18:131–143

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