A link between energy metabolism and plant host adaptation states in the two-spotted spider mite, Tetranychus urticae (Koch)

蜘蛛螨 荨麻疹叶螨 生物 寄主(生物学) 新陈代谢 磷酸戊糖途径 细胞生物学 适应(眼睛) 生物化学 糖酵解 遗传学 植物 神经科学
作者
Jorden Mikaela Maglov,Min Yi Feng,Dorothy Lin,Kennedy Barkhouse,Anton Alexander,Miodrag Grbić,Vladimir Zhurov,Vojislava Grbić,Slavica Tudzarova
出处
期刊:Scientific Reports [Nature Portfolio]
卷期号:13 (1) 被引量:2
标识
DOI:10.1038/s41598-023-46589-9
摘要

Abstract Energy metabolism is a highly conserved process that balances generation of cellular energy and maintenance of redox homeostasis. It consists of five interconnected pathways: glycolysis, tricarboxylic acid cycle, pentose phosphate, trans-sulfuration, and NAD+ biosynthesis pathways. Environmental stress rewires cellular energy metabolism. Type-2 diabetes is a well-studied energy metabolism rewiring state in human pancreatic β-cells where glucose metabolism is uncoupled from insulin secretion. The two-spotted spider mite, Tetranychus urticae (Koch) , exhibits a remarkable ability to adapt to environmental stress. Upon transfer to unfavourable plant hosts, mites experience extreme xenobiotic stress that dramatically affects their survivorship and fecundity. However, within 25 generations, mites adapt to the xenobiotic stress and restore their fitness. Mites’ ability to withstand long-term xenobiotic stress raises a question of their energy metabolism states during host adaptation. Here, we compared the transcriptional responses of five energy metabolism pathways between host-adapted and non-adapted mites while using responses in human pancreatic islet donors to model these pathways under stress. We found that non-adapted mites and human pancreatic β-cells responded in a similar manner to host plant transfer and diabetogenic stress respectively, where redox homeostasis maintenance was favoured over energy generation. Remarkably, we found that upon host-adaptation, mite energy metabolic states were restored to normal. These findings suggest that genes involved in energy metabolism can serve as molecular markers for mite host-adaptation.
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