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Strain-specific gut microbiota modulation is linked to resistance to BmNPV infection in silkworms
Fareed Uddin Memon1, Jing Xu2, Xiaole Xie1
1Guangdong Provincial Key Lab of Agro-animal Genomics and Molecular Breeding, College of Animal Science, South China Agricultural University, Guangzhou 510642, China; Guangxi Key Laboratory of Sericulture Ecology and Applied Intelligent Technology/Guangxi Collaborative Innovation Center of Modern Sericulture and Silk, Hechi University, Hechi 546300, China.
Abstract:
Bombyx mori nucleopolyhedrovirus (BmNPV) is a major pathogen threatening sericulture, yet the role of gut microbiota in strain-specific resistance remains poorly understood. This study compared three silkworm strains with high (Xinjiu, XJ), intermediate (An3, A3), and low (Zhenchixian, ZCX) resistance to BmNPV. Protein assays showed that the resistant XJ strain exhibited the lowest viral EGFP and VP39 expression and highest survival, whereas the susceptible ZCX strain displayed the opposite trend. Shotgun metagenomics revealed strain-specific microbial responses to infection. XJ and A3 maintained significantly higher alpha diversity and more dynamic beta diversity clustering than ZCX, with infection inducing increased microbial gene abundance and emergence of unique taxa in XJ. Taxonomic profiling showed XJ enriched in Firmicutes and beneficial fungal taxa such as Mucoromycota, Ascomycota, Basidiomycota, and Zoopagomycota, alongside reductions in Actinobacteria and Proteobacteria following infection. At finer resolution, resistant strains were enriched in beneficial bacterial classes (Bacilli, Alphaproteobacteria, Opitutae) and fungal classes (Agaricomycetes, Saccharomycetes), with cooperative co-occurrence networks linking these taxa and antagonizing pathogens. In contrast, ZCX was dominated by Gammaproteobacteria, Actinomycetia, and Hydrogenophilalia, consistent with dysbiosis and susceptibility. Functional analysis demonstrated pronounced metabolic reprogramming in resistant strains, especially XJ, with coordinated activation of carbohydrate, amino acid, nucleotide, and lipid metabolism, forming tightly integrated functional networks. Together, these findings reveal that silkworm resistance to BmNPV is associated with microbiome diversity, restructuring toward beneficial taxa, and synergistic metabolic pathways, offering new insights for probiotic-based antiviral strategies.
Insights
Silkworm gut microbes influence Bombyx mori nucleopolyhedrovirus (BmNPV) resistance. Resistant silkworms show higher microbial diversity and beneficial bacteria, suggesting probiotics could enhance antiviral strategies.
Area of Science:
- Entomology
- Microbiology
- Genomics
Background:
- Bombyx mori nucleopolyhedrovirus (BmNPV) poses a significant threat to sericulture.
- The role of gut microbiota in silkworm strain-specific resistance to BmNPV is not well understood.
Purpose of the Study:
- To investigate the relationship between silkworm gut microbiota composition and Bombyx mori nucleopolyhedrovirus (BmNPV) resistance.
- To compare microbial responses to BmNPV infection across silkworm strains with varying resistance levels.
Main Methods:
- Comparative analysis of three silkworm strains (high, intermediate, low resistance) infected with BmNPV.
- Protein assays to measure viral gene expression (EGFP, VP39).
- Shotgun metagenomics for microbial community profiling and functional analysis.
Main Results:
- Resistant silkworm strains exhibited higher survival rates and lower viral gene expression.
- Microbiome analysis revealed higher alpha diversity and distinct beta diversity clustering in resistant strains.
- Resistant strains were enriched in beneficial bacteria (Firmicutes, Bacilli, Alphaproteobacteria) and fungi, with synergistic metabolic pathways.
Conclusions:
- Silkworm resistance to BmNPV is strongly associated with gut microbiome diversity and composition.
- A shift towards beneficial microbial taxa and integrated metabolic pathways enhances antiviral defense.
- Findings support the development of probiotic-based strategies for managing BmNPV in sericulture.
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