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三种自粘树脂水门汀及其对氧化锆增强硅酸锂单冠边缘适合性的影响:一项体外扫描电子显微镜评估

Three Self-Adhesive Resin Cements and Their Influence on the Marginal Adaptation of Zirconia-Reinforced Lithium Silicate Single Crowns: An In Vitro Scanning Electron Microscope Evaluation.

作者信息

Shely Asaf, Nissan Joseph, Lugassy Diva, Rosner Ofir, Zenziper Eran, Egbaria Tharaa, Ben-Izhack Gil

机构信息

Department of Oral Rehabilitation, The Maurice and Gabriela Goldschleger School of Dental Medicine, Sackler Faculty of Medicine, Tel Aviv University, Tel Aviv 6997801, Israel.

Department of Orthodontics, The Maurice and Gabriela Goldschleger School of Dental Medicine, Sackler Faculty of Medicine, Tel Aviv University, Tel Aviv 6997801, Israel.

出版信息

J Clin Med. 2024 Jun 5;13(11):3330. doi: 10.3390/jcm13113330.

DOI:10.3390/jcm13113330
PMID:38893040
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11173126/
Abstract

: In everyday dentistry, monolithic single crowns can be cemented with self-adhesive resin cements. The aim of this in vitro study was to evaluate how the marginal adaptation of full monolithic zirconia-reinforced lithium silicate (ZLS) single crowns is influenced by three different self-adhesive resin cements. : Forty-five typodont teeth fully prepared for full monolithic crowns were divided into three groups (fifteen each) for the use of three different self-adhesive resin cements. A fourth control group (Temp-bond) was created by taking five teeth from each group before cementation with self-adhesive resin cements. All forty-five abutments were scanned using a Primescan intra-oral scanner (IOS), followed by computer-aided design (CAD) and computer-aided manufacturing (CAM) of zirconia-reinforced lithium silicate (ZLS) full crowns using a four-axis machine. Initially, the crowns of the control group were fixed to the abutments using Temp-bond, and the marginal gap was evaluated using a scanning electron microscope (SEM). After removing the control group crowns from the abutments, fifteen crowns in each group were cemented using a different self-adhesive resin cement and observed under SEM for evaluation of the marginal gap. A Kolmogorov-Smirnov test was performed, indicating no normal distribution ( < 0.05), followed by Mann-Whitney tests (α = 0.05). : The total mean marginal gap of the temp-bond control group was significantly lower compared to all three groups of self-adhesive resin cement ( < 0.0005). The total mean marginal gap of the G-cem ONE group was significantly lower compared to the TheraCem group ( < 0.026) and RelyX U200 group ( < 0.008). The total mean marginal gap of the TheraCem group was significantly higher than the G-cem ONE group ( < 0.026) but showed no significant difference with the RelyX U200 group ( > 0.110). : All four groups showed a clinically acceptable marginal gap (<120 microns). Although all three groups of self-adhesive resin cement showed a significant increase in the marginal gap compared to the temp-bond control group, they were within the limits of clinical acceptability. Regarding the marginal gap, in everyday dentistry, it is acceptable to use all three self-adhesive resin cements, although the G-cem ONE group exhibited the lowest marginal gap for ZLS single crowns.

摘要

在日常牙科治疗中,整体式单冠可使用自粘树脂水门汀进行粘结。本体外研究的目的是评估三种不同的自粘树脂水门汀如何影响全瓷氧化锆增强硅酸锂(ZLS)单冠的边缘适合性。

将45颗为全瓷单冠做了充分预备的模型牙分为三组(每组15颗),分别使用三种不同的自粘树脂水门汀。在使用自粘树脂水门汀粘结之前,从每组中取出5颗牙齿组成第四个对照组(临时粘结剂组)。使用Primescan口腔内扫描仪(IOS)对所有45个基牙进行扫描,然后使用四轴机器对氧化锆增强硅酸锂(ZLS)全冠进行计算机辅助设计(CAD)和计算机辅助制造(CAM)。最初,使用临时粘结剂将对照组的牙冠固定在基牙上,并使用扫描电子显微镜(SEM)评估边缘间隙。从基牙上取下对照组牙冠后,每组中的15个牙冠分别使用不同的自粘树脂水门汀进行粘结,并在SEM下观察以评估边缘间隙。进行了Kolmogorov-Smirnov检验,结果表明数据不呈正态分布(P<0.05),随后进行Mann-Whitney检验(α = 0.05)。

临时粘结剂对照组的总平均边缘间隙与所有三组自粘树脂水门汀组相比均显著更低(P<0.0005)。G-cem ONE组的总平均边缘间隙与TheraCem组相比显著更低(P<0.026),与RelyX U200组相比也显著更低(P<0.008)。TheraCem组的总平均边缘间隙显著高于G-cem ONE组(P<0.026),但与RelyX U200组相比无显著差异(P>0.110)。

所有四组的边缘间隙在临床上均是可接受的(<120微米)。尽管与临时粘结剂对照组相比,所有三组自粘树脂水门汀的边缘间隙均有显著增加,但仍在临床可接受范围内。关于边缘间隙,在日常牙科治疗中,使用所有三种自粘树脂水门汀都是可以接受的,尽管G-cem ONE组的ZLS单冠边缘间隙最小。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0b64/11173126/120c508fe275/jcm-13-03330-g004.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0b64/11173126/f8b40758a967/jcm-13-03330-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0b64/11173126/f9019decb971/jcm-13-03330-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0b64/11173126/ce0d6ea05d47/jcm-13-03330-g003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0b64/11173126/120c508fe275/jcm-13-03330-g004.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0b64/11173126/f8b40758a967/jcm-13-03330-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0b64/11173126/f9019decb971/jcm-13-03330-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0b64/11173126/ce0d6ea05d47/jcm-13-03330-g003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0b64/11173126/120c508fe275/jcm-13-03330-g004.jpg

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