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Analysis of Nail and Under-Nail DNA Material in Forensic Genetics

Year 2025, Volume: 2 Issue: 2, 42 - 53, 31.07.2025

Abstract

Forensic genetics significantly contributes to the resolution of various criminal cases. In addition to DNA typing, nail samples and biological materials collected from underneath the fingernails are crucial sources of evidence, especially in cases involving violence and physical struggle. In incidents such as murder, sexual assault, suicide, and disappearance, DNA analysis of biological material obtained from under the victim’s fingernails can assist in identifying suspects. Since nails are composed of keratinized cells, they contain DNA; however, isolating DNA from such cells is more challenging compared to other biological samples. Consequently, various techniques have been developed for DNA isolation from both nails and undernail materials, yet there is no consensus regarding the most effective method. Factors such as the collection technique, daily activities, transfer of material, and the presence of mixed DNA profiles significantly influence the forensic reliability of these samples. Moreover, it remains unclear whether direct analysis of nail tissue or swab samples from under the nails is more effective, or whether swabs should be collected using dry or damp cotton. There is also debate over whether nail tissues and undernail swabs should be analyzed separately or together. Additionally, forensic laboratories lack standardized protocols for the storage and transport of these samples. This study explores the forensic value and analysis methods of nail and undernail materials based on current research.

References

  • Alford RL, Hammond HA, Coto I, Caskey CT. (1994). Rapid and efficient resolution of parentage by amplification of short tandem repeats. Am J Hum Genet., 55:190-195.
  • Allen M., Engstrom A.S., Meyers S., Handt O., Saldeen T., Haeseler A., Paabo S., Gyllensten U. (1998), Mitochondrial DNA sequencing of shed hairs and saliva on robbery caps: sensitivity and matching probabilities, J Forensic Sci 43: 453– 464.
  • Badiye, A., Kapoor, N., & Menezes, R. G. (2023, February 13). Chain of custody. In StatPearls. StatPearls Publishing. Retrieved June 8, 2025, from https://www.ncbi.nlm.nih.gov/books/NBK553101/
  • Bengtsson, C. F., Olsen, M. E., Brandt, L. Ø., Bertelsen, M. F., Willerslev, E., Tobin, D. J., Wilson, A. S., & Gilbert, M. T. P. (2012). DNA from keratinous tissue. Part I: Hair and nail. Annals of Anatomy - Anatomischer Anzeiger, 194(1), 17-25.
  • Bille T., Weitz S., Buckleton J. S., Bright J. A. (2019). Interpreting a major component from a mixed DNA profile with an unknown number of minor contributors. Forensic Sci Int Genet., 40, 150-159.
  • Bozzo W. R., Colussi A. G., Ortíz M. I., Laborde L., Pilili J. P., Carini G., et al. (2015). Analysis of DNA from fingernail samples in criminal cases. Forensic Science International: Genetics Supplement Series, 5, e601-2.
  • Brinkmann, B. (1992). The use of STRs in stain analysis. In:Proceedings from the Third International Symposium on Human Identification. Promega Corporation, Madison, USA, 132: 357–373.
  • Budowle, B., van Daal, A. (2008). Forensically relevant SNP classes. Biotechniques, 44(5), 603-8, 610.
  • Butler JM. Short tandem repeat typing technologies used in human identity testing. Biotechniques. 2007;43:Sii–Sv.
  • Butler, J. M. (2011). Forensic DNA testing. Cold Spring Harbor Protocols, 2011(12), 1438–1450.
  • Cavuş Yonar, F., Sen Yılmaz, A., Cicek, F. (2024). Examination of trace evidence. F. Asıcıoğlu (Ed). In forensic sciences (pp. 62-79). Istanbul: IÜC University Publishing House.
  • Cerri N, Ricci U, Sani I, et al. Mixed stains from sexual assault cases: autosomal or Y-chromosome short tandem repeats? Croat Med J. 2003;44:289–292.
  • Cline, R. E., Laurent, N. M., & Foran, D. R. (2003). The fingernails of Mary Sullivan: developing reliable methods for selectively isolating endogenous and exogenous DNA from evidence. J Forensic Sci., 48(2), 328-33.
  • Cook, O., & Dixon, L. (2007). The prevalence of mixed DNA profiles in fingernail samples taken from individuals in the general population. Forensic Sci Int Genet., 1, 62-8.
  • Damour, G., Basset, P., Samie, L., & Salonu, D., (2025). Tracking male DNA transfer and survival under female victim fingernails: Insights from a 24-h scratch simulation. Forensic Science International: Genetics, Volume 78, 103280
  • De Bruin, K. G., Verheij, S. M., Veenhoven, M., vd. (2012). Comparison of stubbing and the double swab method for collecting offender epithelial material from a victim’s skin. Forensic Science International: Genetics, 6(2), 219-223.
  • Della Rocca C, Chighine A, Piras G, Vecchio C, Mameli A. Nails as optimal source of DNA for molecular identification of 5 decomposed bodies recovered from seawater: from Y-ancestry to personal identification. Int J Legal Med. 2024 May;138(3):787-792.
  • Dowlman, E. A., Martin, N. C., Foy, M. J., vd. (2010). The prevalence of mixed DNA profiles on fingernail swabs. Science & Justice, 50(2), 64-71.
  • Ea D, Martin NC, Foy MJ, et al. The prevalence of mixed DNA profiles on fingernail swabs. Sci Justice. 2010;50:64–71.
  • Edwards, A., Civitello, A., Hammond, H., & Caskey, C. (1991). DNA Typing And Genetic Mapping With Trimeric And Tetrameric Tandem Repeats. American Journal Of Human Genetics, 49(4), 746.
  • FernándezRodríguez, A., Iturralde, M. J., Fernández de Simón, L., Capilla, J., & Sancho, M. (2003). Genetic analysis of fingernail debris: Application to forensic casework. International Congress Series, 1239, 921–924. Elsevier Science.
  • Fokias, K., Dierckx, L., Van de Voorde, W., & Bekaert, B. (2023). Age determination through DNA methylation patterns in fingernails and toenails. Forensic Science International: Genetics, 64, 102846.
  • Giles R.E., Blanc H., Cann H.M., Wallace D.C. (1980) Maternal İnheritance Of Human Mitochondrial-DNA, Proceedings Of The National Academy Of Scince Of The United States Of America- Biological Scinces 77:6715-6719.
  • Gill, P., & Haned, H. (2013). A new methodological framework to interpret complex DNA profiles using likelihood ratios. Forensic Sci Int Genet., 7(2), 251-263.
  • Goodwin W., Linacre A., Vanezis P. (1999), The use of mitochondrial DNA and short tandem repeat typing in the identification of air crash victims, Electrophoresis 20: 1707- 1711.
  • Hamzaoglu, N., Yavuz, M. F. (2024). Biological sampling in cases of sexual assault. G. Filoğlu & Ö. Bülbül (Eds). Forensic biology: In pursuit of justice with traces of nature II (pp. 24-29). Istanbul: IÜC University Publishing House.
  • Hebda, L. M., Doran, A. E., & Foran, D. R. (2014). Collecting and analyzing DNA evidence from fingernails: a comparative study. J Forensic Sci., 59(5), 1343-1350.
  • Hulst, R. V. D., Gerretsen, R. R., Kootker, L. M., Palstra, S. W., Kal, A. J., Ammer, S., ... & Touw, D. J. (2025). A multidisciplinary approach to forensic biological profiling on a single tooth and nail sample. International journal of legal medicine, 139(1), 361-374.
  • Hopwood A.J., Mannucci A., Sullivan K.M. (1996), DNA typing from human faeces, International Journal of Legal Medicine 108: 237-243.
  • Iuvaro, A., Bini, C., Dilloo, S., Sarno, S., & Pelotti, S. (2018). Male DNA under female fingernails after scratching: transfer and persistence evaluation by RT-PCR analysis and Y-STR typing. Int J Legal Med., 132(6), 1603-1609.
  • Inkret, J., Podovšovnik, E., Zupanc, T. et al. Fingernails as primary sample type for molecular genetic identification of highly decomposed human remains. Int J Legal Med 134, 1629–1638 (2020). https://doi.org/10.1007/s00414-020-02289-x
  • Karadayı S, Arasoglu T, Karadayı B, et al. Assessment of the exclusion potential of suspects by using microbial signature in sexual assault cases: a scenario-based experimental study. Forensic Sci Int. 2021;325:110886.
  • Kayser M. Forensic use of Y-chromosome DNA: a general overview. Hum Genet. 2017 May;136(5):621-635. doi: 10.1007/s00439-017-1776-9.
  • Kleypas, D. A., & Badiye, A. (2023, May 8). Evidence collection. In StatPearls. StatPearls Publishing. Retrieved June 8, 2025, from https://www.ncbi.nlm.nih.gov/books/NBK539904/
  • Malsom, S., Flanagan, N., McAlister, C., & Dixon, L. (2009). The prevalence of mixed DNA profiles in fingernail samples taken from couples who cohabit using autosomal and Y-STRs. Forensic Sci Int Genet., 3(2), 57-62.
  • Matte, M., Williams, L., Frappier, R., & Newman, J. (2012). Prevalence and persistence of foreign DNA beneath fingernails. Forensic Sci Int Genet., 6(2), 236-243.
  • Melton T. ve Nelson K. (2001), Forensic mitochondrial DNA analysis: Two years of commercial casework experience in the United States, Croat Med J. 42: 298-303.
  • Newton, M. (2013). The forensic aspects of sexual violence. Best Practice & Research Clinical Obstetrics & Gynaecology, 27(1), 77-90.
  • Nurit, B., Anat, G., Michal, S., Lilach, F., & Maya, F. (2011). Evaluating the prevalence of DNA mixtures found in fingernail samples from victims and suspects in homicide cases. Forensic Sci Int Genet., 5(5), 532-537.
  • Ochiai, E., Asogawa, M., Irie, W., Sasaki, C., Nakamaru, N., Sakamoto, M., ... & Satoh, F. (2022). Examination of pretreatment methods for DNA extraction from nails. Forensic Science International: Genetics Supplement Series, 8, 110-111.
  • Ottens, R., Taylor, D., & Linacre, A. (2015). DNA profiles from fingernails using direct PCR. Forensic Sci Med Pathol., 11(1), 99-103.
  • Park, J., Liang, D., Kim, J. W., Luo, Y., Huang, T., Kim, S. Y., & Chang, S. S. (2012). Nail DNA and possible biomarkers: a pilot study. Journal of Preventive Medicine and Public Health, 45(4), 235.
  • Pereira R., Gomes I., Amorim A., Gusmão L. (2007) Genetic diversity of 10 X chromosome STRs in northern Portugal. Int. J. Legal Med. 121: 192–197
  • Piccinini A. A 5-year study on DNA recovered from fingernail clippings in homicide cases in Milan. In: Brinkmann B, Carracedo A, editor. International Congress Series. Amsterdam (the Netherlands): Elsevier; 2003. p. 929–932.
  • Preuner, S., Danzer, M., Pröll, J., Pötschger, U., Lawitschka, A., Gabriel, C., & Lion, T. (2014). High-quality DNA from fingernails for genetic analysis. Journal of Molecular Diagnostics, 16 (4), 459-466.
  • Prinz M, Boll K, Baum H, Shaler B. Multiplexing of Y chromosome specific STRs and performance for mixed samples. Forensic Sci Int. 1997;14;85(3):209–18.
  • Robin E.D., Wong R. (1988), Mitochondrial DNA molecules and virtual number of mitochondria per cell in Mammalian cells, J Cell Physiol 136 : 507-513
  • Roux, C., Talbot-Wright, B., Robertson, J., Crispino, F., & Ribaux, O. (2015). The end of the (forensic science) world as we know it? The example of trace evidence. Philosophical Transactions of the Royal Society B: Biological Sciences, 370(1674), 20140260. 49. Sagar, G. (2021). Nail as Evidence in Forensic Toxicology, (100- 101).
  • Shimamoto, G. G., Terra, J., & Bueno, M. I. M. S. (2013). Use of Portable X-ray Fluorescence to Discriminate Brands of Nail Polishes: a Potential Forensic Tool. Journal of the Brazilian Chemical Society.
  • Sujirachato, K., Wongyanin, P., Ramadjai, P., Ladsuk, A., Pokkasap, K., & Worasuwannarak, W. (2024). Study of the DNA Extraction from the Nail by Spin Column-based Nucleic Acid Purification. Journal of Forensic Science and Medicine, 10(3), 191-195.
  • Steighner R.J., Holland M. (1998), Amplification and sequencing of mitochondrial DNA in forensic casework, Methods Mol Biol 98:213–223.
  • Szibor R., Krawzak M., Hering S., Edelmann J., Kuhlisch E., Krause D. (2003) Use of XLinked markers for Forensic purposes. International Journal of Legal Medicine, 117: 67–74.
  • Szibor R. (2007). The X-chromosome in forensic science: past, present and future, Molecular Forensics (R. Rapley, D. Whitehouse, Eds), pp. 103–126, John Wiley & Sons, Ltd
  • Truong, L., Park, H. L., Chang, S. S., Ziogas, A., Neuhausen, S. L., Wang, S. S., ... & Anton-Culver, H. (2015). Human nail clippings as a source of DNA for genetic studies. Open journal of epidemiology, 5(1), 41.
  • Van Breda, S. G., Hogervorst, J. G., Schouten, L. J., Knaapen, A. M., van Delft, J. H., Goldbohm, R. A., ... & van den Brandt, P. A. (2007). Toenails: an easily accessible and long-term stable source of DNA for genetic analyses in large-scale epidemiological studies. Clinical chemistry, 53(6), 1168-1170.
  • Watherston, J., McNevin, D., Gahan, M. E. E., Bruce, D., & Ward, J. (2018). Current and emerging tools for the recovery of genetic information from post mortem samples: New directions for disaster victim identification. Forensic Science International: Genetics, 37(March), 270-282.
  • Wilson M.R., Polanskey D., Butler J., DiZinno J.A., Replogle J., Budowle B. (1995), Extraction, PCR amplification and sequencing of mitochondrial DNA from human hair shafts, Biotechniques 18:662–669.
  • Wond, J. H. (2008). The Value of DNA Material Recovered from Crime Scenes. J Forensic Sci., 53(4), 797-801.
  • Yuksel, E., Ozbek, T., & Karadayı, B. (2021). A comparative study on the collection and analysis of DNA evidence obtained from subungual material. 4th INTERNATIONAL HEALTH SCIENCES AND INNOVATION CONGRESS (pp. 672-680). Baku, Azerbaijan.
  • Yuksel, E., Karadayı, S., Ozbek, T., & Karadayı, B. (2024). A comparative experimental study on the collection and analysis of DNA samples from under fingernail material. Forensic Sciences Research, owae025.
There are 60 citations in total.

Details

Primary Language English
Subjects Forensic Biology
Journal Section Reviews
Authors

Esra Betül Peksak 0009-0005-7911-9630

Sabiha Şensöz 0000-0002-4768-6295

Publication Date July 31, 2025
Submission Date April 30, 2025
Acceptance Date July 7, 2025
Published in Issue Year 2025 Volume: 2 Issue: 2

Cite

Vancouver Peksak EB, Şensöz S. Analysis of Nail and Under-Nail DNA Material in Forensic Genetics. HJS. 2025;2(2):42-53.