Department of Restorative Dentistry, School of Dentistry, Universidade Federal de Minas Gerais, Av. Antonio Carlos, 6627, 31270-901, Belo Horizonte, Brazil.
Department of Chemistry, Universidade Estadual do Mato Grosso do Sul, Rod. Dourados Itahum, 12, 79804-970, Dourados, Brazil.
J Mech Behav Biomed Mater. 2022 Dec;136:105511. doi: 10.1016/j.jmbbm.2022.105511. Epub 2022 Oct 11.
We aimed to optimize the mechanical and biological properties of a conventional methacrylate-based dental polymer by loading it with double- and triple-walled carbon nanotubes as growth (DTWCNTG).
A formulation of bisphenol A-glycidyl methacrylate and triethylene glycol dimethacrylate (mass ratio = 2:1) was mixed with DTWCNTG at concentrations of 0.0% (control), 0.001%, 0.005%, and 0.010%. The concentrations were physicochemical and morphologically evaluated, and antibacterial activity was assessed by seeding a Streptococcus mutans strain (ATCC 25175) on the experimental polymeric surfaces. Cellular survival and osteodifferentiation were evaluated in epithelial (HaCat) and preosteoblast cells (MC3T3-E1).
The 0.001% DTWCNTG concentration yielded higher compressive strength, elastic modulus, flexural strength, flexural modulus, water sorption, and solubility than the control. The degree of conversion and color did not significantly change with a low amount of DTWCNTG incorporated into the polymer. Antibacterial activity significantly improved when tested on the 0.001% DTWCNTG discs. No groups showed cytotoxicity in a short-term analysis and adding DTWCNTG favored MC3T3-E1 mineralization over the control, particularly in the 0.001% formulation.
The micro-addition of 0.001% DTWCNTG confers mechanical resistance, antimicrobial properties, and bioactivity to methacrylate-based polymers without significantly compromising color. Incorporating DTWCNTG improved dental composite properties and could be a biomodified material for minimally invasive procedures.
通过负载双壁和三壁碳纳米管作为生长(DTWCNTG),优化传统甲基丙烯酸酯基牙科聚合物的机械和生物学性能。
将双酚 A-缩水甘油甲基丙烯酸酯和三乙二醇二甲基丙烯酸酯(质量比为 2:1)的配方与 DTWCNTG 混合,浓度分别为 0.0%(对照)、0.001%、0.005%和 0.010%。评估了浓度的物理化学和形态,并通过在实验性聚合表面上接种变形链球菌(ATCC 25175)来评估抗菌活性。在上皮(HaCat)和前成骨细胞(MC3T3-E1)中评估细胞存活和成骨分化。
与对照相比,0.001% DTWCNTG 浓度的压缩强度、弹性模量、弯曲强度、弯曲模量、吸水率和溶解度更高。转化率和颜色在聚合物中低含量的 DTWCNTG 加入时没有明显变化。当在 0.001% DTWCNTG 盘上进行测试时,抗菌活性显著提高。在短期分析中,没有任何组表现出细胞毒性,并且添加 DTWCNTG 有利于 MC3T3-E1 矿化,尤其是在 0.001%配方中。
微量添加 0.001% DTWCNTG 可在不显著影响颜色的情况下赋予甲基丙烯酸酯基聚合物抗机械性、抗菌性能和生物活性。掺入 DTWCNTG 可改善牙科复合材料的性能,并且可以成为用于微创程序的生物改性材料。