Introduction: Forensic investigations involving the discovery of a corpse or human remains aim to identify the individual involved. Sometimes, the body is subjected to chemical solutions with the intention of disintegrating or completely altering it. This further complicates identification. Nevertheless, it is possible to recover sufficient DNA from dental tissues. The present study aims to determine the effects of chemical solutions on the physical structure of teeth and also on their DNA. Methods: Teeth from Sus scrofa pigs were subjected to acidic (NHO3, H2SO4, and HCl) and basic (NaOH) solutions for specific durations (up to 144 h). Observations were recorded at regular intervals to document the effects on the tissues. After sampling, DNA was extracted using the PrepFiler? BTA Forensic DNA extraction kit. The extracted DNA was quantified using a BioDrop spectrometer and then amplified by conventional PCR using ACTB and mtDNA primers. The resulting amplicons were subjected to 2% agarose gel electrophoresis. After migration, the fragments were visualized under UV light in a trans-illuminator. Results: The teeth were completely dissolved in HCl and HNO3 solutions after 8 hours of immersion. The other solutions had no significant impact on the physical integrity of the teeth. A total of 32 teeth samples were obtained after exposure to the chemical solutions. The DNA obtained was of sufficient quantity and acceptable purity for the majority of samples. Conclusion: This study has shown that chemical solutions affect biological tissues and their DNA. Amplification of nuclear and mitochondrial DNA sequences by conventional PCR confirms that teeth remain the best source of DNA due to their resistance to degradation factors.
References
[1]
Schotsmans, E.M.J. and Van de Voorde, W. (2017) Concealing the Crime: The Effects of Chemicals on Human Tissues. In: Schotsmans, E.M.J., Márquez-Grant, N. and Forbes, S.L., Eds., Taphonomy of Human Remains: Forensic Analysis of the Dead and the Depositional Environment, John Wiley & Sons Ltd, 17.
[2]
Raj, M., Boaz, K. and Srikant, N. (2013) Are Teeth Evidence in Acid Environment. JournalofForensicDentalSciences, 5, 7-10. https://doi.org/10.4103/0975-1475.114536
[3]
Laurent, F., Vibrac, G., Rubio, A., Thévenot, M. and Pène, L. (2017) Les nouvelles technologies d’analyses ADN au service des enquêtes judiciaires. Médecine/Sciences, 33, 971-978. https://doi.org/10.1051/medsci/20173311014
[4]
Cameriere, R., Ferrante, L., Belcastro, M.G., Bonfiglioli, B., Rastelli, E. and Cingolani, M. (2006) Age Estimation by Pulp/Tooth Ratio in Canines by Peri‐Apical X‐Rays. JournalofForensicSciences, 52, 166-170. https://doi.org/10.1111/j.1556-4029.2006.00336.x
[5]
Abuidrees, A.S., Alhamad, N.A. and Alsaadany, K. (2016) A Suitable Method for DNA Extraction from Bones for Forensic Applications: A Case Study. Australian Journal of Forensic Sciences and Forensic Medicine, 11, 346-352.
[6]
Zupanič Pajnič, I., Debska, M., Gornjak Pogorelc, B., Vodopivec Mohorčič, K., Balažic, J., Zupanc, T., et al. (2016) Highly Efficient Automated Extraction of DNA from Old and Contemporary Skeletal Remains. Journal of Forensic and Legal Medicine, 37, 78-86. https://doi.org/10.1016/j.jflm.2015.11.001
[7]
Pilli, E., Vai, S., Caruso, M.G., D’Errico, G., Berti, A. and Caramelli, D. (2018) Neither Femur nor Tooth: Petrous Bone for Identifying Archaeological Bone Samples via Forensic Approach. ForensicScienceInternational, 283, 144-149. https://doi.org/10.1016/j.forsciint.2017.12.023
[8]
Latham, K.E. and Miller, J.J. (2019) DNA Recovery and Analysis from Skeletal Material in Modern Forensic Contexts. ForensicSciencesResearch, 4, 51-59. https://doi.org/10.1080/20961790.2018.1515594
[9]
Ouédraogo, A.N. and Garba, M.A. (2020) Prélèvement d’organes en question : Facteurs explicatifs d’abstention au Burkina Faso. Revue Africaine des Sciences Sociales et de la Sante Publique, 2, 13.
Walters, E.M., Wells, K.D., Bryda, E.C., Schommer, S. and Prather, R.S. (2017) Swine Models, Genomic Tools and Services to Enhance Our Understanding of Human Health and Diseases. LabAnimal, 46, 167-172. https://doi.org/10.1038/laban.1215
[12]
Samsuwan, J., Somboonchokepisal, T., Akaraputtiporn, T., Srimuang, T., Phuengsukdaeng, P., Suwannarat, A., et al. (2018) A Method for Extracting DNA from Hard Tissues for Use in Forensic Identification. BiomedicalReports, 9, 433-438. https://doi.org/10.3892/br.2018.1148
[13]
Lunney, J.K. (2007) Advances in Swine Biomedical Model Genomics. InternationalJournalofBiologicalSciences, 3, 179-184. https://doi.org/10.7150/ijbs.3.179
[14]
Nygard, A., Jørgensen, C.B., Cirera, S. and Fredholm, M. (2007) Selection of Reference Genes for Gene Expression Studies in Pig Tissues Using SYBR Green qPCR. BMCMolecularBiology, 8, Article No. 67. https://doi.org/10.1186/1471-2199-8-67
[15]
Sandercock, D.A., Coe, J.E., Di Giminiani, P. and Edwards, S.A. (2017) Determination of Stable Reference Genes for Rt-qPCR Expression Data in Mechanistic Pain Studies on Pig Dorsal Root Ganglia and Spinal Cord. ResearchinVeterinaryScience, 114, 493-501. https://doi.org/10.1016/j.rvsc.2017.09.025
[16]
Mazza, A., Merlati, G., Savio, C., Fassina, G., Menghini, P. and Danesino, P. (2005) Observations on Dental Structures When Placed in Contact with Acids: Experimental Studies to Aid Identification Processes. Journal of Forensic and Sciences, 50, JFS2004292-5. https://doi.org/10.1520/jfs2004292
[17]
Trapp, B.M. and Tallman, S.D. (2018) The Effects of Household Corrosive Substances on Silver Amalgam and Porcelain-Fused-to-Metal Restorations and Non-Restored Teeth. ForensicScienceInternational, 293, 77-85. https://doi.org/10.1016/j.forsciint.2018.10.004
[18]
Sowmya, K., Sudheendra, U., Khan, S., Nagpal, N. and Prathamesh, S. (2013) Assessment of Morphological Changes and DNA Quantification: An in Vitro Study on Acid-Immersed Teeth. JournalofForensicDentalSciences, 5, Article 42. https://doi.org/10.4103/0975-1475.114560
[19]
Jadhav, K., Gupta, N., Mujib, A.R. and Amberkar, V. (2009) Effect of Acids on the Teeth and Its Relevance in Postmortem Identification. JournalofForensicDentalSciences, 1, Article 93. https://doi.org/10.4103/0974-2948.60381
[20]
Cope, D.J. and Dupras, T.L. (2009) The Effects of Household Corrosive Chemicals on Human Dentition. JournalofForensicSciences, 54, 1238-1246. https://doi.org/10.1111/j.1556-4029.2009.01147.x
[21]
Hartnett, K.M., Fulginiti, L.C. and Di Modica, F. (2011) The Effects of Corrosive Substances on Human Bone, Teeth, Hair, Nails, and Soft Tissue. JournalofForensicSciences, 56, 954-959. https://doi.org/10.1111/j.1556-4029.2011.01752.x
[22]
Bukyya, J.L., Tejasvi, M.L.A., Avinash, A., P., C.H., Talwade, P., Afroz, M.M., et al. (2021) DNA Profiling in Forensic Science: A Review. GlobalMedicalGenetics, 08, 135-143. https://doi.org/10.1055/s-0041-1728689
[23]
Rubio, L., Santos, I., Gaitan, M.J. and Martin de-las Heras, S. (2012) Time-Dependent Changes in DNA Stability in Decomposing Teeth over 18 Months. ActaOdontologicaScandinavica, 71, 638-643. https://doi.org/10.3109/00016357.2012.700068
[24]
Schrader, C., Schielke, A., Ellerbroek, L. and Johne, R. (2012) PCR Inhibitors-Occurrence, Properties and Removal. JournalofAppliedMicrobiology, 113, 1014-1026. https://doi.org/10.1111/j.1365-2672.2012.05384.x