Author:
Zhao Zhe,Wang Qing,Li Jiale,Zhou Ming,Tang Kai,Chen Jihua,Wang Fu
Abstract
Abstract
Background
Occlusal analysis is essential in the dental clinical practice. However, the traditional occlusal analysis performed on the two-dimensional level can not directly correspond to the tooth surface with three-dimensional profile, therefore the clinical guidance value is limited.
Methods
By combining the 3D digital dental models and quantitative data from 2D occlusal contact analysis, this study constructed a novel digital occlusal analysis method. The validity and reliability of DP and SA were verified by comparing the results of occlusal analysis of 22 participants. ICC values for occlusal contact area (OCA) and occlusal contact number (OCN) were tested.
Results
Results confirmed the reliability of the two occlusal analysis methods with ICC values of 0.909 for SAOCA, 0.906 for DPOCA, 0.929 for SAOCN and 0.904 for DPOCN. The Bland-Altman plot, paired t-test (tOCN = 0.691, P > 0.05) and Pearson correlation analysis results (R = 0.68, p < 0.001) verified the validity between SA and DP. Then a novel digital occlusal analysis method was constructed, which not only can locate the occlusion contact and provide the quantitative analysis, but also provide a comprehensive description of the resultant force of each tooth and the component forces on the x-, y- and z-axis.
Conclusions
This new occlusal analysis method can obtain quantitative analysis of occlusal contact including contact area and force information simultaneously, which will provide new impetus and greater help for clinical dental treatment and scientific research.
Publisher
Springer Science and Business Media LLC
Reference38 articles.
1. Kordaß B, Amlang A, Hugger A, Behrendt C, Ruge S. Number and localization of occlusal contact areas on natural posterior teeth without dental findings - evaluations of the regional baseline study (SHIP-1) with the Greifswald Digital Analyzing System (GEDAS). Int J Comput Dent. 2022;25:47–56.
2. Lee HS, Ko KH, Huh YH, Cho LR, Park CJ. Correlation between occlusal contact area at various levels of interocclusal thicknesses and masticatory performance. J Oral Rehab. 2022;49:522–8. https://doi.org/10.1111/joor.13292.
3. Idris RI, Shoji Y, Lim TW, MClinDent, MPros. Occlusal force and occlusal contact reestablishment with resin-bonded fixed partial dental prostheses using the Dahl concept: A clinical study. J Prosthet Dent. 2022;127:737–43. https://doi.org/10.1016/j.prosdent.2020.11.035.
4. Wada M, Mameno T, Tsujioka Y, Yamashita M, Ikebe K. Effective utilization of digital technology in complete denture fabrication. J Oral Sci. 2022;64:172–4. https://doi.org/10.2334/josnusd.21-0381.
5. Pinheiro FHSL, Frota CM, Garib DG, Sathler R, Ozawa TO, Lauris RCMC, Kato RM, Kurimori ÉT. A cleft-customized occlusal rating system to assess orthodontic occlusal improvement in patients with unilateral cleft lip and palate. Cleft Palate Craniofac J. 2022;59:54–65. https://doi.org/10.1177/1055665621995313.
Cited by
5 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献