Hu Yingzi, Xu Zhiliang, Hu Yi, Hu Lanping, Zi You, Wang Mengke, Feng Xingmei, Huang Weichun
Department of Stomatology, Affiliated Hospital of Nantong University, 20 Xisi Road, Nantong 226001, China.
School of Chemistry and Chemical Engineering, Nantong University, Nantong 226019, China.
Nanomaterials (Basel). 2022 Nov 5;12(21):3911. doi: 10.3390/nano12213911.
In the oral microenvironment, bacteria colonies are easily aggregated on the tooth-restoration surface, in the manner of a biofilm, which usually consists of heterogeneous structures containing clusters of a variety of bacteria embedded in an extracellular matrix, leading to serious recurrent caries. In this contribution, zero-dimensional (0D) bismuth (Bi) quantum dots (QDs) synthesized by a facile solvothermal method were directly employed to fabricate a Bi QD/polydimethylsiloxane (PDMS)-modified tooth by simple curing treatment. The result demonstrates that the as-fabricated Bi QD/PDMS-modified tooth at 37 °C for 120 min not only showed significantly improved hydrophobic performance with a water contact angle of 103° and 115° on the tooth root and tooth crown, respectively, compared to that (~20° on the tooth root, and ~5° on the tooth crown) of the pristine tooth, but also exhibited excellent antibacterial activity against , superior biocompatibility, and biosafety. In addition, due to the highly photothermal effect of Bi QDs, the antibacterial activity of the as-fabricated Bi QD/PDMS-modified tooth could be further enhanced under illumination, even at a very low power density (12 mW cm). Due to the facile fabrication, excellent hydrophobicity, superior antibacterial activity, and biocompatibility and biosafety of the Bi QD/PDMS-modified tooth, it is envisioned that the Bi QD/PDMS-modified tooth with a fascinating self-cleaning and antibacterial performance can pave the way to new designs of versatile multifunctional nanocomposites to prevent secondary caries in the application of dental restoration.
在口腔微环境中,细菌菌落很容易以生物膜的形式聚集在牙齿修复表面,这种生物膜通常由异质结构组成,包含嵌入细胞外基质中的各种细菌簇,从而导致严重的复发性龋齿。在本研究中,通过简便的溶剂热法合成的零维(0D)铋(Bi)量子点(QDs)通过简单的固化处理直接用于制备Bi量子点/聚二甲基硅氧烷(PDMS)修饰的牙齿。结果表明,制备的Bi量子点/PDMS修饰牙齿在37℃下处理120分钟后,与原始牙齿(牙根约20°,牙冠约5°)相比,不仅在牙根和牙冠上分别具有103°和115°的水接触角,疏水性能显著提高,而且对[具体细菌]表现出优异的抗菌活性、卓越的生物相容性和生物安全性。此外,由于Bi量子点具有高度的光热效应,即使在非常低的功率密度(12 mW/cm²)下光照,制备的Bi量子点/PDMS修饰牙齿的抗菌活性也能进一步增强。由于Bi量子点/PDMS修饰牙齿制备简便、疏水性优异、抗菌活性卓越以及生物相容性和生物安全性良好,预计具有迷人的自清洁和抗菌性能的Bi量子点/PDMS修饰牙齿可为多功能纳米复合材料的新设计铺平道路,以在牙齿修复应用中预防继发龋齿。