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February 5, 2026Pest Management Science2 citations

Molecular characterizations and functional analyses of the novel salivary effector SaApo AI from the cereal aphid Sitobion avenae

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SZShuai ZhengXWXiujie WenTHTao Huang

Key Points

  • The study aims to characterize SaApo AI, a salivary effector from Sitobion avenae, and understand its role in plant responses.
  • Characterization of SaApo AI through phylogenetic analysis.
  • Comparison of expression levels in aphids on different diets.
  • Transient expression studies to assess localization of SaApo AI.
  • SaApo AI-silencing assays to evaluate effects on aphid fitness.
  • Analysis of plant immune response modulation by SaApo AI.
  • SaApo AI is highly expressed in S. avenae salivary glands.
  • Feeding on wheat increases SaApo AI expression compared to artificial diets.
  • SaApo AI inhibits plant hypersensitive responses and promotes aphid fitness.
  • The signaling pathways involving salicylic acid and jasmonic acid are suppressed by SaApo AI silencing.

Abstract

Abstract BACKGROUND Salivary proteins are ‘scouts’ in plant–herbivore interactions, influencing plant immune responses and insect fitness. Apolipoproteins, a kind of lipid metabolism‐associated proteins, have been repeatedly found in insect salivary glands, but their exact functions are still elusive. RESULTS The highly expressed apolipoprotein SaApo AI in salivary glands of the English grain aphid, Sitobion avenae (Fabricius), was identified and characterized. Phylogenetic analyses showed that Apo AIs from Hemiptera were highly conserved. SaApo AI was found to be a novel aphid‐specific salivary effector. Expression of SaApo AI was lower in S. avenae individuals fed on artificial diets than on wheat seedlings. SaApo AI was found to inhibit plant hypersensitive responses, and the function of its signal peptide was verified. Transient expression of SaApo AI revealed that SaApo AI was localized to the cell membrane and nucleus. Based on SaApo AI ‐silencing assays, SaApo AI might be able to improve feeding, survival and reproduction of S. avenae . The secretion of SaApo AI could inhibit the accumulation of hydrogen peroxide to promote feeding of S. avenae on wheat. Salicylic acid (SA) signaling in wheat fed by SaAPO AI ‐silenced aphids was suppressed, suggesting the capacity of SaApo AI to modulate the SA–jasmonic acid cross‐talk, and corresponding wheat defenses. CONCLUSION SaApo AI is a novel salivary effector that could modulate wheat immune responses, and enhance the fitness of S. avenae on wheat. Our results provide insights into understanding of mechanisms for salivary apolipoprotein‐mediated plant–aphid interactions, and a potential molecular target for wheat aphid control through RNAi technologies. © 2026 Society of Chemical Industry.

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Cite This Study

Zheng et al. (2026) studied this question.

synapsesocial.com/papers/69843553f1d9ada3c1fb40e4https://doi.org/10.1002/ps.70606
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