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具有抗生物膜和再矿化能力以抑制龋齿的新型低收缩应力生物活性纳米复合材料。

Novel low-shrinkage-stress bioactive nanocomposite with anti-biofilm and remineralization capabilities to inhibit caries.

作者信息

Filemban Hanan, Bhadila Ghalia, Wang Xiaohong, Melo Mary Ann S, Oates Thomas W, Weir Michael D, Sun Jirun, Xu Hockin H K

机构信息

Ph.D. Program in Dental Biomedical Sciences, Biomaterials and Tissue Engineering Division, University of Maryland School of Dentistry, Baltimore, USA.

Department of Advanced Oral Sciences and Therapeutics, University of Maryland School of Dentistry, Baltimore, USA.

出版信息

J Dent Sci. 2022 Apr;17(2):811-821. doi: 10.1016/j.jds.2021.09.032. Epub 2021 Oct 14.

Abstract

BACKGROUND/PURPOSE: A common reason for dental composite restoration failure is recurrent caries at the margins. Our objectives were to: (1) develop a novel low-shrinkage-stress, antibacterial and remineralizing resin composite; (2) evaluate the effects of dimethylaminohexadecyl methacrylate (DMAHDM) on mechanical properties, biofilm inhibition, calcium (Ca) and phosphate (P) ion release, degree of conversion, and shrinkage stress on the new low-shrinkage-stress resin composite for the first time.

MATERIAL AND METHODS

The resin consisted of urethane dimethacrylate (UDMA) and triethylene glycol divinylbenzyl ether (TEG-DVBE) with high resistance to salivary hydrolytic degradation. Composites were made with 0%-8% of DMAHDM for antibacterial activity, and 20% of nanoparticles of amorphous calcium phosphate (NACP) for remineralization. Mechanical properties and biofilm growth on composites were assessed. Ca and P ion releases, degree of conversion and shrinkage stress were evaluated.

RESULTS

Adding 2-5% DMAHDM and 20% NACP into the low-shrinkage-stress composite did not compromise the mechanical properties (p > 0.05). The incorporation of DMAHDM greatly reduced biofilm colony-forming units by 2-5 log and lactic acid production by 7 folds, compared to a commercial composite (p < 0.05). Adding 5% DMAHDM did not compromise the Ca and P ion release. The low-shrinkage-stress composite maintained a high degree of conversion of approximately 70%, while reducing the shrinkage stress by 37%, compared to a commercial control (p < 0.05).

CONCLUSION

The bioactive low-shrinkage-stress composite reduced the polymerization shrinkage stress, without compromising other properties. Increasing the DMAHDM content increased the antibacterial effect in a dose-dependent manner.

摘要

背景/目的:牙科复合树脂修复失败的一个常见原因是边缘复发性龋齿。我们的目标是:(1)开发一种新型的低收缩应力、抗菌和再矿化树脂复合材料;(2)首次评估甲基丙烯酸十六烷基二甲氨基酯(DMAHDM)对新型低收缩应力树脂复合材料的机械性能、生物膜抑制、钙(Ca)和磷(P)离子释放、转化率和收缩应力的影响。

材料与方法

该树脂由对唾液水解降解具有高抗性的二甲基丙烯酸聚氨酯(UDMA)和三乙二醇二乙烯基苄基醚(TEG-DVBE)组成。复合材料中添加0%-8%的DMAHDM以获得抗菌活性,添加20%的无定形磷酸钙纳米颗粒(NACP)以实现再矿化。评估了复合材料的机械性能和生物膜生长情况。对Ca和P离子释放、转化率和收缩应力进行了评估。

结果

在低收缩应力复合材料中添加2%-5%的DMAHDM和20%的NACP不会损害机械性能(p>0.05)。与市售复合材料相比,加入DMAHDM可使生物膜菌落形成单位大幅减少2-5个对数,乳酸产量降低7倍(p<0.05)。添加5%的DMAHDM不会影响Ca和P离子的释放。与市售对照相比,低收缩应力复合材料保持了约70%的高转化率,同时收缩应力降低了37%(p<0.05)。

结论

这种生物活性低收缩应力复合材料降低了聚合收缩应力,同时不影响其他性能。增加DMAHDM含量可使抗菌效果呈剂量依赖性增加。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/771b/9201927/29df7c34886c/gr1.jpg

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