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Antibacterial properties and abrasion-stability: Development of a novel silver-compound material for orthodontic bracket application

材料科学 磨损(机械) 支架 复合材料 生物膜 扫描电子显微镜 牙科 机械工程 医学 生物 细菌 工程类 遗传学
作者
Hannah Denis,Richard Werth,Andreas Greuling,Rainer Schwestka‐Polly,Meike Stiesch,Viktoria Meyer-Kobbe,Katharina Döll
出处
期刊:Journal Of Orofacial Orthopedics / Fortschritte Der Kieferorthopädie [Springer Science+Business Media]
卷期号:85 (1): 30-42 被引量:6
标识
DOI:10.1007/s00056-022-00405-7
摘要

Abstract Purpose Bacteria-induced white spot lesions are a common side effect of modern orthodontic treatment. Therefore, there is a need for novel orthodontic bracket materials with antibacterial properties that also resist long-term abrasion. The aim of this study was to investigate the abrasion-stable antibacterial properties of a newly developed, thoroughly silver-infiltrated material for orthodontic bracket application in an in situ experiment. Methods To generate the novel material, silver was vacuum-infiltrated into a sintered porous tungsten matrix. A tooth brushing simulation machine was used to perform abrasion equal to 2 years of tooth brushing. The material was characterized by energy dispersive X‑ray (EDX) analysis and roughness measurement. To test for antibacterial properties in situ, individual occlusal splints equipped with specimens were worn intraorally by 12 periodontal healthy patients for 48 h. After fluorescence staining, the quantitative biofilm volume and live/dead distribution of the initial biofilm formation were analyzed by confocal laser scanning microscopy (CLSM). Results Silver was infiltrated homogeneously throughout the tungsten matrix. Toothbrush abrasion only slightly reduced the material’s thickness similar to conventional stainless steel bracket material and did not alter surface roughness. The new silver-modified material showed significantly reduced biofilm accumulation in situ. The effect was maintained even after abrasion. Conclusion A promising, novel silver-infiltrated abrasion-stable material for use as orthodontic brackets, which also exhibit strong antibacterial properties on in situ grown oral biofilms, was developed. The strong antibacterial properties were maintained even after surface abrasion simulated with long-term toothbrushing.

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