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February 28, 2026International Journal of Molecular Sciences1 citationsOpen Access

A Thermo-Sensitive Molecular Switch: Pyrexia-1 Dynamically Regulates Low-Temperature Adaptation in Chrysoperla nipponensis

YGYuqing GaoZQZeyu QinZAZainab Haruna Abdullahi

Key Points

  • The aim is to explore the molecular mechanisms of low-temperature adaptation in Chrysoperla nipponensis.
  • Identified the TRPA subfamily gene Pyrexia-1 in Chrysoperla nipponensis.
  • Conducted RNAi-mediated knockdown of Pyrexia-1 to assess cold tolerance effects.
  • Measured changes in supercooling and freezing points after Pyrexia-1 knockdown.
  • Pyrexia-1 was downregulated in response to cold exposure.
  • RNAi knockdown of Pyrexia-1 lowered both supercooling and freezing points, improving survival at −10 °C.
  • Inhibition of Pyrexia-1 increased trehalose levels and upregulated Hsp70, indicating enhanced cold adaptation.

Abstract

Cold tolerance of natural enemy insects is a critical determinant of their overwintering survival and efficacy in biological control. The green lacewing (Chrysoperla nipponensis) is an important natural enemy insect that overwinters as adults in nature; however, its high overwintering mortality severely limits its effective application in spring. To investigate the molecular mechanisms underlying low-temperature adaptation, this study focuses on the temperature-sensitive Transient Receptor Potential (TRP) channels and their roles in the cold tolerance of C. nipponensis. The TRPA subfamily gene, Pyrexia-1, was identified and found to be significantly downregulated upon cold exposure. A functional analysis indicates RNAi-mediated knockdown of Pyrexia-1 significantly lowered both the supercooling point and the freezing point of C. nipponensis adults, enhancing their survival rate at −10 °C. These results indicate Pyrexia-1 as a negative regulator of cold tolerance. Further mechanistic investigation revealed that inhibition of Pyrexia-1 function specifically down regulates the expression of trehalase (TRE1) genes, resulting in a marked accumulation of the cryoprotectant trehalose in adults. This metabolic adjustment was accompanied by the upregulation of heat shock protein Hsp70. Overall, these findings establish Pyrexia-1 as a critical molecular switch linking temperature-sensing signals to the metabolic pathways governing freeze resistance, thereby orchestrating the systemic cold adaptation in C. nipponensis. This discovery provides novel insights into the molecular basis of insect low-temperature adaptation and suggests a potential strategy for enhancing the overwintering capacity of natural enemy insects by targeting this regulatory node.

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Cite This Study

Gao et al. (2026) studied this question.

synapsesocial.com/papers/69a287460a974eb0d3c02e84https://doi.org/10.3390/ijms27052155
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