Department Research, University Center for Dental Medicine Basel UZB, University of Basel, Mattenstrasse 40, Basel, Switzerland.
Department of Biomedical Engineering (DBE), Center of Biomechanics and Biocalorimetry, University of Basel, Allschwil, Switzerland.
Sci Rep. 2023 Aug 18;13(1):13428. doi: 10.1038/s41598-023-39320-1.
Controlling biofilm formation in the oral cavity during orthodontic treatments is crucial. Therefore, antimicrobial surfaces for invisible dental appliances are of interest to both therapists and patients. Here we present a cellulose-based thermoformable material used for invisible braces that can be loaded with essential oils (EOs) having antibacterial and antifungal properties. We hypothesize that this material can absorb and release EOs, thus providing an antimicrobial effect without compromising the safety and mechanical properties necessary for dental invisible braces. Conventional microbiology and isothermal microcalorimetry analyses revealed that the thermoformable material loaded with essential oils significantly delayed the biofilm formation of oral streptococci (S. mutans and S. mitis) under static conditions (p < 0.05) and while simulating saliva flow (p < 0.05). In addition, cytotoxicity tests (ISO 10993-5), revealed that the loaded material is well tolerated by human gingival fibroblasts. Finally, the loading with antibacterial agents did not significantly alter the mechanical properties and stability of the material (initial force (p = 0.916); initial stress (p = 0.465)). Compared to gold-standard clear aligner materials, this material offers a reliable transmission of forces for orthodontic treatments. Moreover, this approach exhibits the potential for acting as an oral drug delivery platform for multiple compounds.
控制正畸治疗过程中口腔内的生物膜形成至关重要。因此,隐形矫治器的抗菌表面受到治疗师和患者的关注。本研究介绍了一种用于隐形牙套的基于纤维素的热成型材料,该材料可负载具有抗菌和抗真菌特性的精油(EO)。我们假设这种材料可以吸收和释放 EO,从而提供抗菌效果,同时又不会影响隐形牙套所需的安全性和机械性能。常规微生物学和等温微量热法分析表明,在静态条件下(p < 0.05)和模拟唾液流动条件下(p < 0.05),负载精油的热成型材料显著延缓了口腔链球菌(变形链球菌和米勒链球菌)的生物膜形成。此外,细胞毒性测试(ISO 10993-5)表明,负载材料可被人牙龈成纤维细胞耐受。最后,负载抗菌剂不会显著改变材料的机械性能和稳定性(初始力(p = 0.916);初始应力(p = 0.465))。与金标准的透明矫正材料相比,这种材料为正畸治疗提供了可靠的力传递。此外,这种方法具有作为多种化合物的口腔药物递送平台的潜力。