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Adaptation to Plant Defence in an Agricultural Insect Pest: Integrating Genome Scans and Gene Expression in the Soybean Aphid Reveals Multi-Genic Pathways.

In agroecosystems, intense selection pressures cause species to adapt and spread, often leading to the evolution and persistence of pests. Understanding how pests rapidly adapt can help develop sustainable strategies for their management and improve agroecosystem health. Pest adaptation involves stable variations in DNA sequence, as well as dynamic shifts in gene expression, often mediated by non-coding regulatory elements. We examined adaptation to plant defences in the soybean aphid, Aphis glycines, in which virulent aphids have overcome plant defences and avirulent aphids have not. Previous data with laboratory colonies suggested that virulent aphids have higher overall gene expression, including transposable elements, some of which influence gene regulation. However, we lack information on how genetic variation in natural populations impacts adaptation and potentially gene regulation. We integrated population genome scans of field-collected, soybean aphid populations with gene expression profiles of virulent and avirulent laboratory colonies to uncover connections between genetic differentiation and gene regulation for virulence. Genome scan methods found 2144 single nucleotide polymorphisms (SNPs) with significant genetic differentiation (i.e., outliers) in field-collected populations. These SNPs were near 1004 genes, representing 5.16% of the effective number of genes. Based on previous RNA-Seq data with laboratory colonies, we found 3160 genes and 147 long non-coding RNAs (lncRNAs) with differential expression among virulent and avirulent biotypes. By integrating both data sets, we identified 16 genes and 5 long non-coding RNAs with differential expression and that were associated with an outlier SNP (within 10 kbp). We validated SNPs with additional field collected aphids and found an aphid clone with stronger virulence than our laboratory virulent colony, surviving on 2 different aphid-resistant soybean varieties. This new virulent clone had fixed allele differences at 9 SNPs compared to our avirulent and other virulent colony. Field collected soybean aphids matching the phenotype of this new virulent clone had significant genetic differentiation with 3 outlier SNPs near genes related to zinc transport and lachesin compared to field collected avirulent aphids. Our entire data reinforced the importance of a potential multi-genetic response to overcome plant defence and generates new insights into complex genetic and regulatory mechanisms involved in insect-plant interactions.

Animals

Identification and functional validation of glutathione S-transferase genes involved in detoxification of sulfoxaflor, afidopyropen and lambda-cyhalothrin in Aphis glycines.

BACKGROUND: Glutathione S-transferases (GSTs) play important roles in the detoxification of insecticides in insects. However, genome-wide identification and functional characterization of the GST gene family in the soybean aphid Aphis glycines have not been performed. RESULTS: A total of 17 AgGST genes were identified in the A. glycines genome and classified into five classes. Phylogenetic analysis and chromosomal mapping showed that delta and epsilon class genes experienced significant expansion. Exposure to LC₅₀ concentrations of sulfoxaflor, afidopyropen and lambda-cyhalothrin strongly induced several AgGST genes with AgGSTd5, AgGSTd6 and AgGSTe2 displaying the highest expression levels. RNA interference of AgGSTd5 significantly increased aphid mortality following exposure to all three insecticides. Knockdown of AgGSTd6 significantly elevated mortality under sulfoxaflor, while knockdown of AgGSTe2 significantly increased mortality under both sulfoxaflor and lambda-cyhalothrin. In contrast, silencing of AgGSTt1 and AgGSTt2 showed no significant effect on aphid mortality under the tested insecticides. CONCLUSION: This study provides comprehensive characterization of the GST gene family in A. glycines and demonstrates that AgGSTd5 plays a central role in the detoxification of sulfoxaflor, afidopyropen and lambda-cyhalothrin, while AgGSTd6 and AgGSTe2 contribute to tolerance against specific insecticides among the three compounds. These genes represent promising molecular targets for monitoring insecticide detoxification responses and for the development of strategies based on GST inhibitors to enhance insecticide efficacy in integrated pest management. © 2026 Society of Chemical Industry.

Animals