article · Biomass Conversion and Biorefinery
Fungal pathogens in the Fusarium family cause destructive crop diseases worldwide. In this study, bimetallic zinc oxide and copper oxide nanoparticles were biologically synthesised using the soil fungus Aspergillus fumigatus. Physical characterisation confirmed that these semi-spherical nanoparticles had an average diameter of approximately 54 nanometres and were naturally capped by the fungal filtrate. Laboratory testing demonstrated clear antifungal action against the plant pathogen Fusarium oxysporum, achieving a minimum inhibitory concentration of 125 micrograms per millilitre and up to 88.9 percent fungal growth inhibition at the highest tested concentration. Detailed microscopic analysis revealed that the nanoparticles caused severe structural damage to the target fungus, including disintegration of the fungal cell wall, disruption of the plasma membrane, and broad degradation of internal cellular structures such as the nucleus and chromatin.
Fusarium oxysporum is a pervasive agricultural pathogen that causes devastating yield losses in vital food crops. Finding alternative biological treatments helps address challenges associated with conventional chemical fungicides. Demonstrating that benign fungi can synthesise potent bimetallic nanoparticles capable of dismantling pathogenic fungal cells offers an eco-friendly path toward safeguarding crop health against resilient agricultural diseases.
This research points towards potential crop protection treatments, such as bio-derived nano-fungicides, intended for agricultural producers tackling destructive soil-borne infections. Because the evaluation is limited to laboratory culture assays and cellular imaging, the technology is at an early research stage. Significant further testing, including greenhouse evaluations, field trials, safety assessments, and process scale-up for fungal synthesis, will be necessary before commercial deployment is viable.
AI-generated from the published abstract. Always read the original work before citing.
Abstract Fusarium species are considered one of the most destructing plant pathogens. In the current study, bimetallic zinc oxide-copper oxide nanoparticles (ZnO-CuO NPs) were myco-synthesized using Aspergillus fumigatus for controlling Fusarium oxysporum growth. Aspergillus fumigatus was isolated from soil and identified morphologically and genetically. The myco-synthesized ZnO-CuO NPs were characterized using UV-Vis, DLS, HR-TEM, SEM, and XRD analyses. HR-TEM characterization method indicated that, the biosynthesized bimetallic ZnO-CuO NPs appeared as semi-spherical with the average diameter specified as 54.18 ± 1.9 nm. The DLS method described the characteristic particle size diffusion and was calculated as 85.52 nm, 90.85 nm, and 92.85 nm for ZnO NPs, CuO NPs, and ZnO-CuO NPs, respectively. Additionally, the SEM image of ZnO-CuO NPs displays basic NP surface character and the exterior impression was apparent. The biosynthesized ZnO-CuO NPs were separated naturally as spherical particles connected within the fungal filtrate, which displays as illuminated NPs fused and capped with the fungal filtrate. Antifungal activity of bimetallic ZnO-CuO NPs was evaluated against F. oxysporum . Results revealed that bimetallic ZnO-CuO NPs exhibited promising antifungal activity toward F. oxysporum where inhibition zone at 1000 µg/ml was 22.8 ± 0.76 mm, and MIC was 125 µg/ml. Moreover, growth inhibition percentages of F. oxysporum at different concentrations of bimetallic ZnO-CuO NPs 1000, 500, 250, and 125 µg/ml were 88.9, 65.5, 41.1, and 8.9% respectively, where the highest inhibition was 88.9% at concentration 1000 µg/ml, while the lowest inhibition was 8.9% at concentration 125 µg/ml. In TEM ultrastructure results, the treated F. oxysporum with ZnO-CuO NPs, a clear destruction was found in all cell contents and disintegration of the cell wall as well as destruction of the plasma membrane. Also, the nucleus appeared as small size and damaged shape and the chromatin materials distributed with several dark stained bodies in cytoplasm. In conclusion, bimetallic ZnO-CuO NPs were successfully myco-synthesized using A. fumigatus , where it had promising antifungal activity against F. oxysporum .
This page summarises published work. The authoritative version sits with the publisher.
DOI: 10.1007/s13399-023-04550-w
Is something wrong with this record? Report it or request removal.
Discussion
Have you built on this work, tried to replicate it, or seen it applied in practice? Share what you know. Verified researchers and MARATTO™ domain experts can open a discussion, and any member can reply. Contributions are reviewed before they appear.
No discussion yet. Open the first thread.
New to MARATTO™? Create a free account.