气候变化下两种侵入性球蛾的分布重叠及比较基因组学研究

Yan Zhao, Yu Zhang, Lin Huang, Tao Yang, Sheng-Yen Wu, Shanglin Li, Youming Hou
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引用次数: 0

摘要

番茄叶蛾(Tuta absoluta, Meyrick)和马铃薯块茎蛾(Phthorimaea operculella, Zeller)是近缘种,已迅速入侵全球热带、亚热带和地中海地区,对茄类作物造成严重危害。利用优化后的MaxEnt模型结合19个生物气候变量,综合预测了它们在当前和未来气候情景下的潜在分布。虽然该物种的分布区域有明显的重叠,但我们的模型预测绝对T.可能在高纬度和干旱地区建立。为了进一步探索它们的适应机制,我们基于这两个物种和其他20种昆虫的基因组进行了比较基因组学研究。尽管它们的亲缘关系密切,但绝对稻霉拥有的独特基因家族比盖菌多5.5倍,而且与农药抗性(p450: 92比86)、极端温度耐受性(热休克蛋白[HSPs]: 62比58)和干燥胁迫耐受性(水通道蛋白[AQP]: 12比9)相关的基因家族也显著扩大。这些基因组特征表明,与P. operculella相比,T. absoluta将更快地适应环境挑战,并具有更大的入侵新地区的潜力。本研究阐明了绝对T. absoluta和有盖P. operculella的潜在分布模式和基因组进化,突出了它们不同的入侵和适应策略。这些发现为研究这些入侵害虫的栖息地适宜性提供了新的视角,并为气候适应性管理策略提供了科学依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Distribution overlap and comparative genomics of two invasive gelechiid moths, Tuta absoluta and Phthorimaea operculella, under climate change.

The tomato leafminer moth, Tuta absoluta (Meyrick), and the potato tuber moth, Phthorimaea operculella (Zeller), are closely related gelechiid species that have rapidly invaded tropical, subtropical, and Mediterranean regions worldwide, causing severe damage to solanaceous crops. We used the optimized MaxEnt model combined with 19 bioclimatic variables to comprehensively predict their potential distributions under current and future climate scenarios. While the distribution areas of the species overlapped significantly, our models predicted T. absoluta could potentially establish into high-latitude and arid areas. To further explore their adaptive mechanisms, we conducted comparative genomics based on the genomes of both species and 20 other insect species. Despite their close relationship, T. absoluta possessed 5.5 times more unique gene families than P. operculella, along with significantly expanded gene families associated with pesticide resistance (P450s: 92 vs. 86), extreme temperature tolerance (heat shock proteins [HSPs]: 62 vs. 58), and desiccation stress tolerance (aquaporins [AQP]: 12 vs. 9). These genomic features suggest that T. absoluta will adapt faster to environmental challenges and has greater potential to invade new areas compared to P. operculella. This study elucidates the patterns of potential distribution and genome evolution for T. absoluta and P. operculella, highlighting their distinct invasion and adaptation strategies. The findings provide both a novel perspective on the habitat suitability of these invasive pests and a scientific basis for climate-adaptive management strategies.

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