Lupu Iulian-Costin, Tatarciuc Monica Silvia, Vitalariu Anca Mihaela, Bobu Livia, Diaconu Diana Antonela, Vasluianu Roxana-Ionela, Stamatin Ovidiu, Cretu Cosmin Ionut, Dima Ana Maria
Department of Prosthodontics, Faculty of Dental Medicine, "Grigore T. Popa" University of Medicine and Pharmacy, 700115 Iasi, Romania.
Department of Dental Prosthesis Technology, Faculty of Dental Medicine, "Grigore T. Popa" University of Medicine and Pharmacy, 700115 Iasi, Romania.
Biomimetics (Basel). 2025 Sep 19;10(9):632. doi: 10.3390/biomimetics10090632.
Zirconia's superior mechanical properties and biocompatibility have made it a cornerstone of modern prosthodontics, yet achieving durable biomimetic bonding to tooth structure remains a challenge. This scoping review synthesizes evidence on bonding strategies for zirconia-based fixed dental prostheses (FDPs), evaluating surface treatments, cementation protocols, and long-term performance. Following PRISMA-ScR guidelines, 18 studies from PubMed, Scopus, Web of Science, and Embase were thoroughly analyzed. Key findings indicate that tribochemical silica coating (e.g., Rocatec™) combined with 10-methacryloyloxydecyl dihydrogen phosphate (MDP)-based primers (e.g., Panavia V5) is associated with the highest bond strengths (>40 MPa) and exceptional clinical survival rates (e.g., >95% at 15 years for resin-bonded FDPs). These combined mechanical-chemical strategies can be viewed as an attempt to create a biomimetic, hybrid interface akin to the natural enamel-dentin junction. Additively manufactured zirconia exhibits inferior bonding compared to milled counterparts, while ethyl cellulose coatings applied to the bonding surface effectively prevent contamination from saliva and moisture during intraoral try-in procedures. However, heterogeneous testing protocols and limited long-term clinical data highlight the need for standardized aging models and randomized trials. This review consolidates current evidence, offering clinically actionable recommendations through a biomimetic lens while identifying critical gaps for future research.
氧化锆卓越的机械性能和生物相容性使其成为现代口腔修复学的基石,但实现与牙齿结构的持久仿生粘结仍是一项挑战。本综述综合了基于氧化锆的固定义齿(FDPs)粘结策略的证据,评估了表面处理、粘结方案和长期性能。遵循PRISMA-ScR指南,对来自PubMed、Scopus、Web of Science和Embase的18项研究进行了全面分析。主要发现表明,摩擦化学二氧化硅涂层(如Rocatec™)与基于10-甲基丙烯酰氧基癸基磷酸二氢酯(MDP)的底漆(如Panavia V5)相结合,具有最高的粘结强度(>40 MPa)和出色的临床存活率(如树脂粘结FDPs在15年时>95%)。这些机械-化学联合策略可被视为一种尝试,旨在创建一个类似于天然釉质-牙本质结合处的仿生混合界面。与研磨后的氧化锆相比,增材制造的氧化锆粘结性能较差,而在粘结表面涂覆乙基纤维素涂层可有效防止在口腔内试戴过程中受到唾液和水分的污染。然而,测试方案的异质性和有限的长期临床数据凸显了标准化老化模型和随机试验的必要性。本综述整合了当前证据,通过仿生视角提供了具有临床可操作性的建议,同时确定了未来研究的关键差距。