Department of Biotechnology, Faculty of Science, Taif University, Taif 21974, Saudi Arabia.
Department of Botany and Microbiology, Faculty of Science, Assiut University, Assiut 71516, Egypt.
Molecules. 2021 Nov 12;26(22):6832. doi: 10.3390/molecules26226832.
Dental caries results from the bacterial pathogen () and is the maximum critical reason for caries formation. Consequently, the present study aims to evaluate the antibacterial activity of a newly synthesized nanoantibiotic-Biodentine formulation. The silver nanoparticles (ROE-AgNPs) were biosynthesized from the usage of L. extract (ROE) and conjugated with cefuroxime to form Cefuroxime-ROE-AgNPs. Using Biodentine™ (BIOD), five groups of dental materials were prepared, in which Group A included conventional BIOD, Group B included BIOD with ROE-AgNPs, Groups C and D included BIOD with Cefuroxime-ROE-AgNPs at concentrations of 0.5% and 1.5% cefuroxime, respectively, and Group E included BIOD with 1.5% cefuroxime. The synthesized ROE-AgNPs or Cefuroxime-ROE-AgNPs were characterized for conjugating efficiency, morphology, particle size, and in vitro release. Minimum inhibitory concentration (MIC) of the cefuroxime, ROE-AgNPs, and Cefuroxime-ROE-AgNPs were additionally evaluated against cefuroxime resistant , which furthered antibacterial efficacy of the five groups of dental materials. The UV-Visible spectrum showed the ROE-AgNPs or Cefuroxime-ROE-AgNPs peaks and their formation displayed through transmission electron microscopy (TEM), X-ray diffraction (XRD) pattern, and Fourier transforms infrared (FTIR) analysis. The end result of Cefuroxime-ROE-AgNPs showed conjugating efficiency up to 79%. Cefuroxime-ROE-AgNPs displayed the highest antibacterial efficacy against as compared to cefuroxime or ROE-AgNPs alone. Moreover, the MIC of ROE-AgNPs and Cefuroxime-ROE-AgNPs was detected against to be 25 and 8.5 μg/mL, respectively. Consequently, Cefuroxime-ROE-AgNPs displayed that a decrease in the MIC reached to more than three-fold less than MIC of ROE-AgNPs on the tested strain. Moreover, Cefuroxime-ROE-AgNPs/BIOD was employed as a novel dental material that showed maximum antimicrobial activity. Groups C and D of novel materials showed inhibitory zones of 19 and 26 mm, respectively, against and showed high antimicrobial rates of 85.78% and 91.17%, respectively. These data reinforce the utility of conjugating cefuroxime with ROE-AgNPs to retrieve its efficiency against resistant . Moreover, the nanoantibiotic delivered an advantageous antibacterial effect to BIOD, and this may open the door for future conjugation therapy of dental materials against bacteria that cause dental caries.
龋齿是由细菌病原体()引起的,是龋齿形成的最大关键原因。因此,本研究旨在评估新合成的纳米抗生素- Biodentine 制剂的抗菌活性。银纳米粒子(ROE-AgNPs)是使用(ROE)从 L. 提取物中生物合成的,并与头孢呋辛结合形成头孢呋辛-ROE-AgNPs。使用 Biodentine™(BIOD),制备了五组牙科材料,其中组 A 包括常规 BIOD,组 B 包括含有 ROE-AgNPs 的 BIOD,组 C 和 D 分别包含浓度为 0.5%和 1.5%头孢呋辛的头孢呋辛-ROE-AgNPs,组 E 包含 1.5%头孢呋辛的 BIOD。对合成的 ROE-AgNPs 或头孢呋辛-ROE-AgNPs 进行了结合效率、形态、粒径和体外释放的表征。此外,还评估了头孢呋辛、ROE-AgNPs 和头孢呋辛-ROE-AgNPs 对耐头孢呋辛的最低抑菌浓度(MIC),进一步提高了五组牙科材料的抗菌效果。紫外-可见光谱显示了 ROE-AgNPs 或头孢呋辛-ROE-AgNPs 的峰,通过透射电子显微镜(TEM)、X 射线衍射(XRD)图谱和傅里叶变换红外(FTIR)分析显示了它们的形成。头孢呋辛-ROE-AgNPs 的最终结果显示结合效率高达 79%。与单独使用头孢呋辛或 ROE-AgNPs 相比,头孢呋辛-ROE-AgNPs 对具有更高的抗菌功效。此外,ROE-AgNPs 和头孢呋辛-ROE-AgNPs 对的 MIC 检测值分别为 25 和 8.5μg/ml。因此,头孢呋辛-ROE-AgNPs 的 MIC 降低了三倍以上,而 ROE-AgNPs 的 MIC 则降低了三倍以上。此外,头孢呋辛-ROE-AgNPs/BIOD 被用作一种新型牙科材料,显示出最大的抗菌活性。新型材料的 C 组和 D 组对表现出 19 和 26mm 的抑菌圈,抗菌率分别为 85.78%和 91.17%。这些数据证实了将头孢呋辛与 ROE-AgNPs 结合以恢复其对耐药的功效。此外,纳米抗生素对 BIOD 具有有利的抗菌作用,这可能为未来针对导致龋齿的细菌的牙科材料的偶联治疗开辟了道路。