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March 25, 2026Biology5 citationsOpen Access

Transcriptome Analysis and Identification of Chemosensory Genes in Leguminivora glycinivorella

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JSJiaqi ShiMinistry of Agriculture and Rural AffairsYZYuxin ZhouGuizhou UniversityZDZhengxiao Du

Key Points

  • This research aims to elucidate the chemosensory system of Leguminivora glycinivorella to inform pest management strategies.
  • Conducted reference-based transcriptomics across multiple tissues of L. glycinivorella.
  • Identified and characterized chemosensory genes, including ORs, GRs, IRs, OBPs, CSPs, and SNMPs.
  • Performed sequence and phylogenetic analyses on identified genes.
  • Conducted expression profiling to determine sexual and tissue dimorphism of chemosensory genes.
  • Isolated a wide range of chemosensory genes, including 76 ORs, 15 GRs, and 18 IRs.
  • Male antennae showed higher expression of putative pheromone receptors compared to females.
  • Identified female-biased expression of several OBPs and ORs relevant for host location and oviposition.
  • Detected high expression of GR43a homologs linked to fructose sensing.
  • Noted absence of typical CO2 receptor components, suggesting different perception mechanisms.

Abstract

The soybean pod borer, Leguminivora glycinivorella, is a monophagous pest that threatens soybean production. Its larvae feed concealed within pods, which limits the efficacy of conventional insecticides. Elucidating its chemosensory system is therefore essential for developing green, behavior-based management strategies. Reference-based transcriptomics across multiple tissues of L. glycinivorella identified a comprehensive repertoire of chemosensory genes, including 76 odorant receptors (ORs), 15 gustatory receptors (GRs), 18 ionotropic receptors (IRs), 52 odorant-binding proteins (OBPs), 18 chemosensory proteins (CSPs), and 4 sensory neuron membrane proteins (SNMPs). Sequence and phylogenetic analyses characterized these candidates within the context of known insect chemosensory families. Notably, canonical bitter GRs and specific IR lineages (e.g., IR100/IR85a) were not detected in our dataset, potentially reflecting adaptation to the specialized soybean-feeding habit of this pest. Expression profiling further revealed pronounced sexual and tissue dimorphism: male antennae showed significant enrichment of putative pheromone receptors (PRs) and LglySNMP1, whereas several OBPs and ORs exhibited female-biased expression, suggesting roles in host location and oviposition. Additionally, the high expression of GR43a homologs points to fructose sensing, while the lack of detectable CO2 receptor components (except LglyGR2) suggests atypical carbon dioxide perception mechanisms. Collectively, this study provides a valuable expression atlas of chemosensory genes in L. glycinivorella and identifies sex-specific candidate genes for future functional validation and behavior-based pest management.

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Cite This Study

Shi et al. (2026) studied this question.

synapsesocial.com/papers/69c37bb3b34aaaeb1a67e4d0https://doi.org/10.3390/biology15060505
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