生物模拟重矿化策略为丹丁债券稳定性-系统性审查和网络元分析
Rosário Costa1, Joana Reis-Pardal2,3, Sofia Arantes-Oliveira4
1Faculty of Dental Medicine, Department of Operative Dentistry, University of Porto, Rua Dr. Manuel Pereira da Silva, 4200-393 Porto, Portugal.
International journal of molecular sciences
|May 7, 2025
概括
生物仿真重矿化 (BR) 显示出在人类牙中改善人工牙损伤受影响 (ACAD) 的结合强度的潜力. 这次审查分析了体外研究,发现BR可能会提高结合效率.
科学领域:
- 牙科材料科学 牙科材料科学
- 生物材料工程 生物材料工程
- 卡里斯研究 研究 卡里斯研究
背景情况:
- 牙损会影响牙,损害牙结构和牙的完整性.
- 恢复牙损伤 (ACAD) 需要确保持久粘附的材料.
- 生物仿真重矿化 (BR) 策略旨在恢复非矿化牙的矿物质含量和结构完整性.
研究的目的:
- 系统地审查并对带有和没有BR的ACAD的键强度进行网络元分析.
- 为了评估不同BR策略在试管体内对键强度的影响.
- 探索粘合剂应用技术和ACAD协议对粘合强度的影响.
主要方法:
- 按照PRISMA指南进行系统审查和随机效应网络元分析.
- 包括82项符合条件的体外研究,评估ACAD的结合强度.
- 进行元回归分析,研究粘合技术,ACAD协议和粘合强度之间的关系.
主要成果:
- 大多数纳入的研究 (19/22) 具有中等偏差风险.
- 超回归表明粘合技术,ACAD协议和24小时的粘合强度之间存在显著的关联.
- 网络元分析同时比较了多个BR干预措施.
结论:
- 生物仿真重矿化在试验室中显示了增强受人工病影响的牙结合强度的潜力.
- 粘合剂应用技术和ACAD协议是影响粘合强度的重要因素.
- 需要进一步进行高质量的研究,以优化临床应用的BR策略.
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