Paediatric Dentistry and Orthodontics, Faculty of Dentistry, The University of Hong Kong, Prince Philip Dental Hospital, 34 Hospital Road, Sai Ying Pun, Hong Kong.
Dental Materials Science, Applied Oral Sciences, Faculty of Dentistry, The University of Hong Kong, Prince Philip Dental Hospital, 34 Hospital Road, Sai Ying Pun, Hong Kong.
Dent Mater. 2021 Apr;37(4):655-671. doi: 10.1016/j.dental.2021.01.005. Epub 2021 Feb 10.
To give a current review of the mechanism of mussel adhesion, the application of mussel-inspired compounds in dentistry and the challenges associated with clinical application.
Inspired by the wet adhesion property of 3,4-dihydroxyphenol-l-alanine (Dopa) in mussel plaques, various chemical compounds have been synthesized to mimic the mussel as an adhesion model for medical applications. Similar to mussels in the marine environment, dental materials in the oral environment have to endure long-term water hydrolysis, mechanical stress and other chemical challenges. These challenges have influenced an increasing number of studies that are exploring the translation of mussel-inspired adhesion to clinical applications. Therefore, this review discusses the mussel adhesion chemistry and its related application in dentistry.
Mussel-inspired compounds have achieved relatively acceptable performances in various dental fields, including surface coating, metal ions chelation, dentin bonding and mucosal adhesion. However, two practical problems remain to be comprehensively addressed, namely the protection of catechol groups from oxidation, and the feasibility for clinical application.
The mussel's wet adhesion ability has attracted much research interest in the dental field because of its properties of moisture-resistant adhesion and surface coating. Despite the emergence of several mussel-inspired compounds in recent years, a comprehensive and timely review of their applications in dentistry is lacking. Therefore, the current review hopes to provide valuable information around the application of mussel-inspired compounds in dentistry with their pros and cons discussed.
对贻贝黏附的机制、贻贝启发型化合物在牙科中的应用以及与临床应用相关的挑战进行综述。
受贻贝斑块中 3,4-二羟基苯丙氨酸(Dopa)的湿黏附特性的启发,合成了各种化学化合物来模拟贻贝作为医学应用的黏附模型。与海洋环境中的贻贝类似,口腔环境中的牙科材料必须长期耐受水解、机械应力和其他化学挑战。这些挑战促使越来越多的研究探索贻贝启发型黏附转化为临床应用。因此,本文讨论了贻贝黏附化学及其在牙科中的相关应用。
贻贝启发型化合物在各种牙科领域,包括表面涂层、金属离子螯合、牙本质黏合和黏膜黏附方面,已取得了相对可接受的性能。然而,仍有两个实际问题需要全面解决,即保护儿茶酚基团免受氧化和临床应用的可行性。
贻贝的湿黏附能力因其耐湿黏附性和表面涂层的特性,引起了牙科领域的广泛研究兴趣。尽管近年来出现了几种贻贝启发型化合物,但缺乏对其在牙科中应用的全面及时的综述。因此,本综述希望提供有关贻贝启发型化合物在牙科中应用的有价值信息,并讨论其优缺点。