Enhancing the accuracy of dental implant placement and preventing thermal damage to bone tissue when using surgical navigation guides
DOI:
https://doi.org/10.57231/j.idmfs.2026.5.2.039Abstract
The article presents the results of an analysis of the effectiveness of using surgical navigation templates in dental implantation in patients with partial secondary edentulism. The influence of surgical templates on the accuracy of dental implant positioning was studied, as well as on the conditions of implant bed preparation, including indirect signs of thermal effects on bone tissue. A comparative evaluation of the conventional freehand implant placement method and the technique using surgical templates was carried out based on clinical and radiological control data.
References
Цой А. Р., и др. Клиническое применение хирургического навигационного шаблона при дентальной имплантации // Вестник КГМА. — 2023. — № 2. — URL: https://vestnik.kgma.kg/index.php/vestnik/article/view/675
Турсуналиев З. З. Современные подходы к дентальной имплантации // InterOn Conference Proceedings. — 2023. — URL: https://interonconf.org/index.php/taare/article/view/10817
Shi Y., Wang J., Ma C., Shen J., Dong X. A systematic review of the accuracy of digital surgical guides for dental implantation // International Journal of Implant Dentistry. — 2023.
Wu D., Zhou L., Yang J., Zhang B., Lin Y., Chen J., Huang W., Chen Y. Accuracy of dynamic navigation compared to static surgical guide for dental implant placement // International Journal of Implant Dentistry. — 2020.
Yi C., Li S., Wen A., Wang Y., Zhao Y., Zhang Y. Digital versus radiographic accuracy evaluation of guided implant surgery // BMC Oral Health. — 2022.
Nulty A. B. Methodology for analysing implant position without CBCT // British Dental Journal. — 2024.
Eriksson A. R., Albrektsson T. Temperature threshold levels for heat-induced bone tissue injury: a vital-microscopic study in the rabbit // Journal of Prosthetic Dentistry. — 1983. — Vol. 50, № 1. — P. 101–107. — DOI: https://doi.org/10.1016/0022-3913(83)90174-9
Sharawy M., Misch C. Heat generation during implant drilling: the significance of motor speed // Journal of Oral and Maxillofacial Surgery. — 2002. — Vol. 60. — P. 1160–1169. — DOI: https://doi.org/10.1053/joms.2002.34996
Benington I. C., et al. Temperature changes in bovine bone during implant site preparation // Clinical Oral Implants Research. — 2002. — Vol. 13. — P. 251–256. — DOI: https://doi.org/10.1034/j.1600-0501.2002.130304.x
Matthews L. S., Hirsch C. Temperatures measured in human cortical bone during drilling // Journal of Bone and Joint Surgery. — 1972. — Vol. 54. — P. 297–308.
D’haese J., Vercruyssen M. Current state of the art of computer-guided implant surgery // Periodontology 2000. — 2017. — Vol. 73. — P. 121–133. — DOI: https://doi.org/10.1111/prd.12175
Van Assche N., Vercruyssen M., Coucke W., Teughels W., Jacobs R., Quirynen M. Accuracy of guided implant surgery: a systematic review // Clinical Oral Implants Research. — 2014. — DOI: https://doi.org/10.1111/clr.12265
Misch C. E. Contemporary Implant Dentistry. — Mosby, 2008.
Brisman D. L. The effect of speed, pressure, and time on bone temperature during drilling // Journal of Oral Surgery. — 1996.
Augustin G., et al. Thermal osteonecrosis and bone drilling parameters // Archives of Orthopaedic and Trauma Surgery. — 2008. — DOI: https://doi.org/10.1007/s00402-007-0427-3
Scarano A., et al. Thermal effects of implant drills during osteotomy // Journal of Craniofacial Surgery. — 2011.
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