Jain Khushi, Paulraj Jessy, Maiti Subhabrata, Shanmugam Rajeshkumar
Department of Pedodontics and Preventive Dentistry, Saveetha Dental College and Hospitals, Saveetha Institute of Medical and Technical Sciences, Saveetha University, Chennai, IND.
Department of Prosthodontics, Saveetha Dental College and Hospitals, Saveetha Institute of Medical and Technical Sciences, Saveetha University, Chennai, IND.
Cureus. 2024 Jun 21;16(6):e62837. doi: 10.7759/cureus.62837. eCollection 2024 Jun.
Background Glass ionomer cement (GIC) serves as a crucial biomaterial in dental restoration, offering applications in filling, lining, and adhesive procedures. Nevertheless, its mechanical properties often fall short, particularly in regions subjected to considerable stress. To address this issue, zirconia nanoparticles are incorporated at specific levels. Aim To assess the antimicrobial efficacy and compressive resilience of GIC modified with zirconia nanoparticles synthesized through green synthesis methods. Material and methods Zirconia nanoparticles were synthesized via a green method utilizing aloe vera extract in solvent form. These nanoparticles were then mixed into GIC at different concentration levels. Group I incorporated zirconia nanoparticles at a concentration of 3%, Group II at 5%, and Group III at 10%, while Group IV was the control, consisting of traditional GIC. Following that, samples were prepared and underwent characterization through various analytical techniques. The ability to inhibit microbial growth and the compressive resilience of the groups were examined. Microbial inhibition against the bacterial strains was assessed through minimum inhibitory concentration (MIC), and the ability to withstand compression was gauged by measuring the maximum force the specimen could endure before fracturing. Data underwent analysis with Statistical Package for the Social Sciences (IBM SPSS Statistics for Windows, IBM Corp., Version 24.0, Armonk, NY). Repeated measures of analysis of variance (ANOVA) were utilized to gauge average MIC values and compressive strength. Following this, Tukey's post hoc test was employed for pairwise comparisons. Results The findings indicated, incorporating zirconia nanoparticles into GIC led to an improvement in its antimicrobial effectiveness, with a noticeable enhancement observed as the weight percent (% wt) of the additive increased. This improvement was notably noticeable in its effectiveness against and , exceeding that of the control with a noteworthy distinction. Furthermore, there were significant enhancements in compressive strength, in Group I (180.48 ± 1.02), Group II (191.25 ± 0.52), and Group III (197.52 ± 0.75), compared to Group IV (167.22 ± 1.235), with significant disparities (p < 0.05). Conclusion The research illustrates that introducing green-synthesized zirconia nanoparticles into GIC leads to heightened bactericidal potency and compressive resilience when contrasted with the control group (Group IV). Notably, the highest concentration of 10% demonstrated the most favourable antimicrobial attributes alongside enhanced strength. Consequently, integrating green-synthesized zirconia nanoparticles into GIC holds potential as a proficient material. In future studies, there should be an exploration of molecular chemistry and bonding mechanisms to enhance our comprehension of its capabilities.
玻璃离子水门汀(GIC)是牙科修复中一种关键的生物材料,可用于填充、衬层和粘结程序。然而,其机械性能往往不足,特别是在承受相当大应力的区域。为了解决这个问题,在特定水平上加入了氧化锆纳米颗粒。
评估通过绿色合成方法合成的氧化锆纳米颗粒改性的GIC的抗菌效果和抗压弹性。
利用芦荟提取物以溶剂形式通过绿色方法合成氧化锆纳米颗粒。然后将这些纳米颗粒以不同浓度水平混入GIC中。第一组加入浓度为3%的氧化锆纳米颗粒,第二组为5%,第三组为10%,而第四组为对照组,由传统GIC组成。随后,制备样品并通过各种分析技术进行表征。检测各组抑制微生物生长的能力和抗压弹性。通过最低抑菌浓度(MIC)评估对细菌菌株的抑菌能力,并通过测量样品在断裂前所能承受的最大力来衡量其抗压能力。数据使用社会科学统计软件包(IBM SPSS Statistics for Windows,IBM公司,版本24.0,纽约州阿蒙克)进行分析。采用重复测量方差分析(ANOVA)来评估平均MIC值和抗压强度。在此之后,使用Tukey事后检验进行两两比较。
研究结果表明,将氧化锆纳米颗粒掺入GIC可提高其抗菌效果,随着添加剂重量百分比(%wt)的增加,抗菌效果有显著增强。这种增强在其对[具体细菌名称1]和[具体细菌名称2]的有效性中尤为明显,与对照组相比有显著差异。此外,与第四组(167.22±1.235)相比,第一组(180.48±1.02)、第二组(191.25±0.52)和第三组(197.52±0.75)的抗压强度有显著提高,差异显著(p<0.05)。
该研究表明,与对照组(第四组)相比,将绿色合成的氧化锆纳米颗粒引入GIC可提高杀菌效力和抗压弹性。值得注意的是,10%的最高浓度显示出最有利的抗菌特性以及增强的强度。因此,将绿色合成的氧化锆纳米颗粒整合到GIC中具有作为一种有效材料的潜力。在未来的研究中,应该探索分子化学和键合机制,以增强我们对其性能的理解。