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Języki publikacji
Abstrakty
Studying the properties of hard tissues, such as bones or teeth, often requires an experimental approach that enables the mechanisms observed in clinical settings to be explained or supports the safe planning of clinical trials. This paper compiles some methodological insights on the proper preparation of biogenic apatite found in human teeth for in vitro studies. These insights were gathered through experimental work and a review of some literature related to in vitro studies on the impact of metal orthodontic appliances on the chemical and crystallographic properties of dental enamel.
Słowa kluczowe
Wydawca
Czasopismo
Rocznik
Tom
Strony
1--3
Opis fizyczny
Bibliogr. [22] poz.
Twórcy
autor
- Department of Mineralogy, Petrography and Geochemistry, Faculty of Geology, Geophysics and Environmental Protection, AGH University of Krakow, Krakow, 30-059, Poland
Bibliografia
- Aljawad, M., Steuwer, A., Kilcoyne, S., Shore, R., Cywinski, R., & Wood, D. (2007). 2D mapping of texture and lattice parameters of dental enamel. Biomaterials, 28(18), 2908–2914. doi: 10.1016/j.biomaterials.2007.02.019
- Angker, L., Nockolds, C., Swain, M., & Kilpatrick, N. (2004). Quantitative analysis of the mineral content of sound and carious primary dentine using BSE imaging. Archives Of Oral Biology, 49(2), 99–107. doi: 10.1016/j. archoralbio.2003.08.006
- Beniash, E., Stifler, C. A., Sun, C.-Y., Jung, G. S., Qin, Z., Buehler, M. J., & Gilbert, P. U. P. A. (2019). The hidden structure of human enamel. Nature Communications, 10(1), 4383. doi: 10.1038/s41467-019-12185-7
- Branscombe, T., Lee‐Thorp, J., Schulting, R., & Leng, M. (2022). Micromilling vs hand drilling in stable isotope analyses of incremental carbonates: The potential for δ13C contamination by embedding resin. Rapid Communications in Mass Spectrometry, 36(14), e9318. doi: 10.1002/rcm.9318
- Drouet, C. (2015). A comprehensive guide to experimental and predicted thermodynamic properties of phosphate apatite minerals in view of applicative purposes. The Journal of Chemical Thermodynamics, 81, 143–159. doi: 10.1016/j.jct.2014.09.012
- Drouet, C. (2019). Applied predictive thermodynamics (ThermAP). Part 2. Apatites containing Ni-2+, Co2+, Mn2+, or Fe2+ ions. Journal of Chemical Thermodynamics, 136, 182–189. doi: 10.1016/j. jct.2015.06.016
- Ghadimi, E., Eimar, H., Marelli, B., Nazhat, S. N., Asgharian, M., Vali, H., & Tamimi, F. (2013). Trace elements can influence the physical properties of tooth enamel. SpringerPlus, 2(1), 499. doi: 10.1186/2193-1801-2-499
- Guede, I., Zuluaga, M. C., Ortega, L. A., Alonso-Olazabal, A., Murelaga, X., Pina, M., & Gutierrez, F. J. (2017). Analyses of human dentine and tooth enamel by laser ablation-inductively coupled plasma-mass spectrometry (LA-ICP-MS) to study the diet of medieval Muslim individuals from Tauste (Spain). Microchemical Journal, 130, 287–294. doi: 10.1016/j. microc.2016.10.005
- Hannig, M. (1999). Transmission electron microscopy of early plaque formation on dental materials in vivo. European Journal of Oral Sciences, 107(1), 55–64. doi: 10.1046/j.0909-8836.1999.eos107109.x
- Hellak, A. F., Riepe, E. M., Seubert, A., & KorbmacherSteiner, H. M. (2015). Enamel demineralization after different methods of interproximal polishing. Clinical Oral Investigations, 19(8), 1965–1972. doi: 10.1007/ s00784-015-1429-0
- Kidd, E. A. M., & Fejerskov, O. (2004). What Constitutes Dental Caries? Histopathology of Carious Enamel and Dentin Related to the Action of Cariogenic Biofilms. Journal of Dental Research, 83(1_suppl), 35–38. doi: 10.1177/154405910408301s07
- LeGeros, R. Z. (2008). Calcium phosphate-based osteoinductive materials. Chemical reviews. 108(11), 4742–4753. doi: 10.1021/cr800427g
- Pasero, M., Kampf, A. R., Ferraris, C., Pekov, I. V., Rakovan, J., & White, T. J. (2010). Nomenclature of the apatite supergroup minerals. European Journal of Mineralogy, 22(2), 163-179). doi: 10.1127/0935-1221/2010/0022- 2022
- Ptáček, P. (2016). Apatites and their Synthetic Analogues— Synthesis, Structure, Properties and Applications. InTech. doi: 10.5772/59882
- Rosier, B., Marsh, P., & Mira, A. (2018). Resilience of the Oral Microbiota in Health: Mechanisms That Prevent Dysbiosis. Journal of Dental Research, 97, 371–380. doi: 10.1177/0022034517742139
- Sarna-Boś, K., Skic, K., Boguta, P., Adamczuk, A., Vodanovic, M., & Chałas, R. (2023). Elemental mapping of human teeth enamel, dentine and cementum in view of their microstructure. Micron, 172, 103485. doi: 10.1016/j. micron.2023.103485
- Shellis, R. (1996). A scanning electron-microscopic study of solubility variations in human enamel and dentine. Archives Of Oral Biology, 41(5), 473–484. doi: 10.1016/0003-9969(96)00140-9
- Ten Cate, J. M., Timmer, K., Shariati, M., & Featherstone, J. D. B. (1988). Effect of Timing of Fluoride Treatment on Enamel De- and Remineralization in vitro: A pHCycling Study. Caries Research, 22(1), 20–26. doi: 10.1159/000261078
- Topolska, J. M., Jagielska, A., Motyl, S., Kozub-Budzyń, G. A., Kępa, L., Wagner, B., & Wątor, K. (2024). Metal leakage from orthodontic appliances chemically alters enamel surface during experimental in vitro simulated treatment. Scientific Reports, 14(1), 5412. doi: 10.1038/s41598-024-56111-4
- Topolska, J. M., Kozub-Budzyń, G. A. (2024). “SEM and EDS data of exemplary ‘diamond’ drill.”, https://doi. org/10.18150/QFSZL3, RepOD
- Vitkov, L., Kastner, M., Kienberger, F., Hinterdorfer, P., Schilcher, K., Grunert, I., … Krautgartner, W. D. (2008). Correlations between AFM and SEM imaging of acidetched tooth enamel. Ultrastructural Pathology, 32(1), 1–4. doi: 10.1080/01913120701808065
- White, T. J., & ZhiLi, D. (2003). Structural derivation and crystal chemistry of apatites. Acta Crystallographica Section B Structural Science, 59(1), 1–16. doi: 10.1107/ S0108768102019894
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa nr POPUL/SP/0154/2024/02 w ramach programu "Społeczna odpowiedzialność nauki II" - moduł: Popularyzacja nauki (2025).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-b04d34f1-526e-4d37-8769-03d039c1af40
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