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February 5, 2026Microbial Ecology0 citationsOpen Access

Microbial Mediators of Pine Defense Resistance: Stage-Specific Gut Symbionts Enable Acantholyda posticalis to Overcome Terpenoid Barriers

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YWYao WangSHShipeng HanLNLihua Niu

Key Points

  • This work aims to explore how Acantholyda posticalis uses gut bacteria to handle pine's defensive chemicals.
  • Isolated two bacterial strains from the larval gut using traditional culturing methods.
  • Conducted in vitro assays to assess the bacteria's ability to degrade α- and β-pinene.
  • Performed high-throughput 16S rRNA sequencing to analyze gut bacterial community changes by developmental stage.
  • Predicted functional roles of gut microbial communities in metabolic processes.
  • Isolated Klebsiella variicola and Enterobacter hormaechei capable of degrading pinene terpenoids.
  • Identified significant stage-specific patterns in gut bacterial communities.
  • Predicted involvement of gut microbes in detoxification pathways and phosphotransferase systems.

Abstract

Acantholyda posticalis (Matsumura) is a globally significant forest pest that inflicts substantial economic losses through its feeding activity on Pinus species. As an oligophagous insect, A. posticalis relies critically on its gut microbiota to overcome the defensive secondary metabolites of pine needles, particularly α- and β-pinene terpenoids. This study investigated the dynamic compositional changes of gut bacterial communities across different developmental stages of A. posticalis and characterized their functional roles in host adaptation. Through traditional culturing methods, two pinene-degrading bacterial strains-Klebsiella variicola and Enterobacter hormaechei-were isolated from the larval gut. In vitro assays demonstrated their significant capacity to degrade the two pinenes. High-throughput 16S rRNA sequencing revealed stage-specific bacterial enrichment patterns. Functional prediction suggested these microbial communities participate in critical metabolic processes, including phosphotransferase systems, GST activity, and detoxification pathways. This work advances understanding of insect-microbe symbiosis in oligophagous systems and proposes novel strategies for ecologically sustainable A. posticalis control through manipulation of its gut microbiota.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69843360f1d9ada3c1fb06ddhttps://doi.org/10.1007/s00248-025-02641-x
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