Thermal Adaptation in Liriomyza trifolii (Diptera: Agromyzidae): From Interspecific Competition to Mechanisms.

IF 2.9 2区 农林科学 Q1 ENTOMOLOGY
Insects Pub Date : 2025-09-11 DOI:10.3390/insects16090957
Ya-Wen Chang, Jing-Ya Zhao, Yu-Cheng Wang, Yu-Zhou Du
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Abstract

Global climate change has intensified temperature fluctuations, significantly impacting insect populations. Thermal tolerance has emerged as a critical determinant of species distribution and invasion potential. Liriomyza trifolii, an economically important invasive pest, has been rapidly expanding in southeastern coastal regions of China, gradually displacing its congeners L. sativae and L. huidobrensis. This competitive advantage is closely associated with its superior thermal adaptation strategies. Here, we first examine the temperature-mediated competitive dominance of L. trifolii, then systematically elucidate the physiological, biochemical, and molecular mechanisms underlying its temperature tolerance, revealing its survival strategies under extreme temperatures. Notably, L. trifolii exhibits a lower developmental threshold temperature and higher thermal constant, extending its damage period, while its significantly lower supercooling point confers exceptional overwintering capacity. Physiologically, rapid cold hardening (RCH) enhances cold tolerance through glycerol accumulation and increased fatty acid unsaturation, while heat acclimation improves thermotolerance via a trade-off between developmental processes and reproductive investment. Molecular analyses demonstrate that L. trifolii combines the low-temperature inducible characteristics of L. huidobrensis with the high-temperature responsive advantages of L. sativae in heat shock protein (Hsp) expression patterns. Transcriptomic studies further identify differential expressions of lipid metabolism and chaperone-related genes as key to thermal adaptation. Current research limitations include incomplete understanding of non-Hsp gene regulatory networks and laboratory-field adaptation discrepancies. Future studies should integrate multi-omics approaches with ecological modeling to predict L. trifolii's expansion under climate change scenarios and develop temperature-based green control strategies.

三叶蛾的热适应:从种间竞争到机制。
全球气候变化加剧了气温波动,严重影响了昆虫种群。热耐受性已成为物种分布和入侵潜力的关键决定因素。摘要作为一种具有重要经济意义的入侵害虫,三叶枯落蝇(Liriomyza trifolii)在中国东南沿海地区迅速扩张,并逐渐取代其同族植物sativae和huidobrensis。这种竞争优势与其优越的热适应策略密切相关。在此,我们首先研究了L. trifolii的温度介导的竞争优势,然后系统地阐明了其温度耐受性的生理、生化和分子机制,揭示了其在极端温度下的生存策略。值得注意的是,三叶草具有较低的发育阈温度和较高的热常数,延长了其损伤期,而其显著较低的过冷点则赋予了特殊的越冬能力。生理上,快速冷硬化(RCH)通过甘油积累和脂肪酸不饱和增加来增强耐寒性,而热驯化通过发育过程和生殖投资之间的权衡来提高耐寒性。分子分析表明,在热休克蛋白(Hsp)的表达模式上,三叶橐橐橐橐的低温诱导特性与油菜橐橐橐橐的高温响应优势结合在一起。转录组学研究进一步发现脂质代谢和伴侣相关基因的差异表达是热适应的关键。目前的研究局限包括对非热休克蛋白基因调控网络的不完全理解和实验室领域的适应差异。未来的研究应将多组学方法与生态模型相结合,以预测气候变化情景下三叶松的扩张,并制定基于温度的绿色控制策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Insects
Insects Agricultural and Biological Sciences-Insect Science
CiteScore
5.10
自引率
10.00%
发文量
1013
审稿时长
21.77 days
期刊介绍: Insects (ISSN 2075-4450) is an international, peer-reviewed open access journal of entomology published by MDPI online quarterly. It publishes reviews, research papers and communications related to the biology, physiology and the behavior of insects and arthropods. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. Electronic files regarding the full details of the experimental procedure, if unable to be published in a normal way, can be deposited as supplementary material.
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