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February 22, 2026Scientific Reports2 citationsOpen Access

Thermal variation associated stress response regulates the growth and reproductive potential of soybean looper

RDRahul DebnathJGJustin GeorgeRKRupesh Kariyat

Key Points

  • The research aims to understand how temperature variations affect the growth and reproductive potential of the soybean looper.
  • Analyzed life table parameters of soybean looper using the age-stage, two-sex method.
  • Conducted comparative analysis of antioxidant enzymes and total protein concentration in larvae.
  • Simulated population projections over an 80-day timescale under varying temperature conditions.
  • Extreme temperature conditions significantly extended developmental periods of SBL.
  • Oviposition performance of SBL was adversely affected under extreme thermal stress.
  • Temperature stress increased antioxidant levels, negatively impacting growth and development.
  • Population projections indicated a significant reduction in total SBL numbers during extreme temperatures.

Abstract

Abstract The soybean looper (SBL) is one of the most damaging insect pests of soybean and other economically important crops worldwide. Although temperature has been reported to be a critical predictor of pest growth and development, very little is known about how temperature variations influence SBL population dynamics, which may aid in predicting SBL population outbreaks and dispersal. To examine this, we analysed the life table parameters of SBL by the age-stage, two-sex method under different temperature conditions. We also performed comparative analysis of antioxidant enzymes and total protein concentration from SBL larvae to unfold the enzymatic stress levels. Life table analysis revealed a significant extension in the developmental periods, and oviposition performance was adversely affected under extreme (extended) temperature conditions. Additionally, temperature stress elevated the antioxidant level, which negatively affected the growth and development of SBL, resulting in reduced plant damage. Population projections over an 80-day timescale simulation indicated that total SBL numbers would be significantly reduced during extreme temperature events compared to optimal temperatures. Overall, our findings suggest that extreme thermal stress had a negative effect on SBL growth and population progression, which could be used to meticulously predict SBL outbreaks and facilitate the development of a more efficient and sustainable management strategy.

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Cite This Study

Debnath et al. (2026) studied this question.

synapsesocial.com/papers/699a9d27482488d673cd2eb5https://doi.org/10.1038/s41598-026-36978-1
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