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February 6, 2026Microorganisms0 citationsOpen Access

A Biofilm-State Bacillus thuringiensis Formulation Drives Midgut Structural Disruption and Transcriptomic Reprogramming in Ectropis grisescens

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YZYimeng ZhangHHHongzheng HuWPWenhui Pan

Key Points

  • To investigate how biofilm-state Bacillus thuringiensis alters structural and transcriptomic responses in Ectropis grisescens.
  • Evaluated insecticidal efficacy through bioassays with biofilm-state Bt and composite inducers.
  • Conducted histopathological and biochemical analyses to assess midgut damage.
  • Performed transcriptomic analysis to examine changes in gene expression related to detoxification and stress response.
  • Composite inducers with biofilm-state Bt achieved 2.88-fold reduction in LC50 against neonate larvae compared to planktonic Bt.
  • Biofilm-state Bt resulted in more severe midgut damage than conventional formulations.
  • Transcriptomic analysis indicated extensive remodeling of pathways related to detoxification and stress response.

Abstract

Bacillus thuringiensis (Bt) is one of the most extensively used microbial insecticides, attributed to the action of insecticidal crystal proteins (ICPs), primarily Cry toxins, which mediate damage to the insect midgut epithelium. Recent evidence suggests that Bt toxicity is also strongly influenced by its physiological state and interactions with the host gut environment. Biofilm formation represents an important adaptive strategy that enhances bacterial stress tolerance and may modulate insecticidal performance, although the underlying mechanisms remain unclear. However, it is still unclear how Bt in the biofilm state alters host responses at the structural and transcriptomic levels. Using the tea plantation pest Ectropis grisescens as a model, we systematically evaluated the insecticidal efficacy of biofilm-state Bt formulations and their synergistic effects with a biofilm inducer system composed of Tween-80, tea saponin, matrine, and tea polyphenols. Bioassays showed that the biofilm-state Bt supplemented with composite inducers achieved the highest corrected mortality and reduced the LC50 against neonate larvae by 2.88-fold compared with conventional planktonic Bt. Histopathological, biochemical, and transcriptomic analyses further revealed that biofilm-state Bt caused more severe midgut damage and induced extensive remodeling of detoxification- and stress-response-related pathways. These findings highlight Bt physiological state as a critical determinant of formulation efficacy and provide a novel framework for Bt optimization through microbial physiological regulation.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/698585cb8f7c464f23009679https://doi.org/10.3390/microorganisms14020366
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