Silica nanoparticles drive disease-suppressive microbiome assembly via inosine-associated metabolic reprogramming and biofilm promotion

生物膜 微生物群 重编程 生物 微生物学 细胞生物学 细菌 生物化学 医学微生物学 化学 微生物生态学 代谢活性 计算生物学 细菌蛋白 纳米颗粒
作者
Minghao Lv,Wenchong Shi,Shidong He,Yang Li,Mingcong Li,Yanyan Zhou,Lanxiang Ma,Jie Xu,Fengjie Nie,Tangyuan Ning,Bo Zhou,Zheng Gao
出处
期刊:Microbiome [BioMed Central]
标识
DOI:10.1186/s40168-026-02491-w
摘要

Soil metabolites serve as critical cues that orchestrate the assembly of microbial communities. However, the precise mechanisms by which specific chemical signals mediate plant–microbiome interactions to enhance disease resistance remain elusive. In particular, how engineered nanomaterials, such as SiO 2 NPs, leverage this metabolic signaling to promote the establishment of disease-suppressive microbiomes is largely unexplored. We integrated metagenomics, metabolomics, and transcriptomics to elucidate the synergy between SiO 2 NP–driven soil metabolic reprogramming and the establishment of biocontrol bacteria. We first demonstrated that SiO 2 NPs inhibited potato common scab in a dose-dependent manner and drove significant shifts in soil microbial community structure and network complexity. We identified Bacillus as a core SiO 2 NP–responsive taxon, and experiments showed that Bacillus velezensis strain PH3-11 inhibited pathogenic Streptomyces , with isovaleric acid emerging as a candidate antimicrobial metabolite associated with this antagonistic activity. Metabolomic and metagenomic analyses further indicated that SiO 2 NPs stimulated inosine accumulation, and inosine was strongly associated with the community structure of SiO 2 NP-responsive biomarkers. Mechanistically, transcriptomic analysis showed that inosine, as a SiO 2 NP–responsive metabolite, upregulated genes involved in extracellular polysaccharide synthesis in strain PH3-11 (e.g., epsD , epsN , and epsO ) and markedly promoted biofilm formation by PH3-11. Field trials further confirmed a synergistic effect of co-applying inosine with strain PH3-11, which was superior to single-strain inoculation in promoting biocontrol bacterial colonization, suppressing disease, and enhancing soil microbiome stability. Our findings unveil a “nano-metabolite-microbiome” cascade, suggesting that SiO 2 NPs promote the enrichment of protective biofilm-forming bacteria by reprogramming the soil metabolome and promoting inosine accumulation. This study supports an inosine-associated mechanism contributing to disease-suppressive microbiome assembly and highlights the potential of nano-enabled synbiotics to manipulate chemical–biological coupling for sustainable plant health. Video Abstract
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