Yassin Mohamed Taha, Elgorban Abdallah M, Al-Askar Abdulaziz A, Sholkamy Essam Nageh, Ameen Fuad, Maniah Khalid
Botany and Microbiology Department, College of Science, King Saud University, P.O. Box 2455, Riyadh 11451, Saudi Arabia.
Micromachines (Basel). 2023 Jan 14;14(1):209. doi: 10.3390/mi14010209.
The high occurrence of mycological resistance to conventional antifungal agents results in significant illness and death rates among immunodeficient patients. In addition, the underprivileged therapeutic results of conventional antifungal agents, besides the potential toxicity resulting from long term therapy necessitate the fabrication of efficient antimicrobial combinations. Hence, the objective of the present investigation is to synthesize, characterize and investigate the anticandidal action of green zinc oxide nanoparticles (ZnO-NPs) formulated using leaf extract against three candidal pathogens. The eco-friendly synthesized ZnO-NPs were characterized utilizing different physicochemical methods and their anticandidal potency was tested utilizing a disk diffusion assay. In this setting, the size of the biofabricated ZnO-NPs was detected using transmission electron microscope (TEM) micrographs, recording an average particle size of 19.380 ± 2.14 nm. In addition, zeta potential analysis revealed that the ZnO-NPs surface charge was -4.72 mV. The biogenic ZnO-NPs reveal the highest anticandidal activity against the strain, demonstrating relative suppressive zones measured at 35.16 ± 0.13 and 37.87 ± 0.24 mm in diameter for ZnO-NPs concentrations of 50 and 100 μg/disk, respectively. Excitingly, showed a high susceptibility to the biofabricated ZnO nanomaterials at both ZnO-NPs' concentrations (50 and 100 μg/disk) compared to the control. Moreover, the biosynthesized ZnO-NPs revealed potential synergistic effectiveness with nystatin and terbinafine antifungal agents against the concerned strains. The maximum synergistic efficiency was noticed against the strain, demonstrating relative synergistic percentages of 23.02 and 45.9%, respectively. The biogenic ZnO-NPs revealed no hemolytic activity against human erythrocytes revealing their biosafety and hemocompatibility. Finally, the high anticandidal effectiveness of biogenic ZnO-NPs against the concerned candidal pathogens, as well as potential synergistic patterns with conventional antifungal agents such as nystatin and terbinafine, emphasize the prospective application of these combinations for the fabrication of biocompatible and highly efficient antifungal agents.
真菌对传统抗真菌药物的高耐药率导致免疫缺陷患者出现显著的发病率和死亡率。此外,传统抗真菌药物治疗效果不佳,且长期治疗存在潜在毒性,因此需要研发高效的抗菌组合。因此,本研究的目的是合成、表征并研究使用叶提取物制备的绿色氧化锌纳米颗粒(ZnO-NPs)对三种念珠菌病原体的抗念珠菌作用。利用不同的物理化学方法对生态友好合成的ZnO-NPs进行表征,并使用纸片扩散法测试其抗念珠菌效力。在此情况下,使用透射电子显微镜(TEM)图像检测生物制造的ZnO-NPs的尺寸,记录平均粒径为19.380±2.14nm。此外,zeta电位分析表明ZnO-NPs的表面电荷为-4.72mV。生物合成的ZnO-NPs对该菌株显示出最高的抗念珠菌活性,对于浓度为50和100μg/盘的ZnO-NPs,其相对抑菌圈直径分别为35.16±0.13和37.87±0.24mm。令人兴奋的是,与对照相比,在两种ZnO-NPs浓度(50和100μg/盘)下,该菌株对生物制造的ZnO纳米材料均表现出高度敏感性。此外,生物合成的ZnO-NPs与制霉菌素和特比萘芬抗真菌药物对相关菌株显示出潜在的协同效果。对该菌株观察到最大的协同效率,相对协同百分比分别为23.02%和45.9%。生物合成的ZnO-NPs对人红细胞无溶血活性,表明其生物安全性和血液相容性。最后,生物合成的ZnO-NPs对相关念珠菌病原体的高抗念珠菌效力以及与制霉菌素和特比萘芬等传统抗真菌药物的潜在协同模式,强调了这些组合在制备生物相容性和高效抗真菌药物方面的潜在应用。