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Updated: Jun 6, 2026

Bioassay-Guided Identification of Natural Products for Biocontrol by Thin Layer Chromatography-Direct Bioautography
Published on: July 26, 2024
A coordinated toolbox strategy integrating direct pathogen suppression, host-associated responses, and microbiome
Chenguo Li1, Chaojiang Wang1, Shimin Wu1
1Beijing Key Laboratory of Bioprocess, College of Life Science and Technology, Beijing University of Chemical Technology, Beijing, 100029, P. R. China.
None:
Although integrated pest management promotes the coordinated use of multiple disease-control tactics, single sprayable formulations that consolidate complementary crop-protection functions remain underdeveloped. Here, we combined semi-rational screening with supramolecular co-assembly to construct a ternary nanoassembly comprising glycyrrhizic acid (GA, a plant-derived amphiphile), magnolol (MN, a plant-derived antifungal phenolic), and Zn2+, termed G-M@Zn NPs. Compared with free MN, G-M@Zn NPs enhanced MN photostability by 3.7-fold and increased rainfastness by 2.1-fold, indicating improved formulation persistence under simulated photolytic and wash-off stresses. The nanoformulation exhibited broad-spectrum antifungal activity in vitro against representative phytopathogenic fungi and, in a wheat-spike infection model of Fusarium graminearum, reduced the disease index from 52.5 ± 2.46 in the infected control to 22.3 ± 3.4. Under toxin-inducing conditions, G-M@Zn NPs also reduced deoxynivalenol (DON) accumulation and downregulated key TRI genes. Mechanistic assays linked the antifungal activity of G-M@Zn NPs to fungal membrane injury and mitochondria-associated oxidative stress in F. graminearum, with free MN eliciting qualitatively similar but weaker responses. G-M@Zn NP treatment was also accompanied by host defence-related physiological and metabolic responses involving redox regulation and tryptophan/indole-related pathways, together with treatment-associated shifts in the wheat spike microbiome. Preliminary biosafety assays indicated crop compatibility under the tested conditions and low acute toxicity toward earthworms. Serial-passage assays with F. graminearum showed only a modest increase in EC50 after eight passages. Overall, this ternary co-assembly provides a strategy for integrating complementary crop-protection functions within a single multifunctional nanoformulation and supports IPM-compatible control of F. graminearum infection in wheat. It may also inform the design of bioinspired nanopesticide systems that combine improved formulation persistence with direct antifungal activity and crop-associated biological responses.
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