The evolutionary trajectories of specialized metabolites towards antiviral defense system in plants.

The evolutionary trajectories of specialized metabolites towards antiviral defense system in plants.
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DOI:
10.1186/s43897-023-00078-9
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发表时间:
2024-01-12
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其他
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植物中的病毒感染对21世纪的农业和全球粮食安全构成了重大挑战。植物已经进化出一系列专门的代谢物(PSM)来防御病原体。尽管PSMS介导的植物-微生物相互作用已被广泛发现,但这些作用主要局限于植物-细菌或植物-真菌的相互作用。然而,由于病毒传播载体的额外参与,PSM介导的植物与病毒的相互作用往往更加复杂。在这里,我们回顾了PSM的主要类别及其在抗病毒耐药中的新角色。此外,还介绍了PSM介导的植物、病毒和病毒传播载体之间相互作用的进化情景。在理解植物-病毒相互作用过程中PSM的生化语言方面的这些进展,不仅为理解跨生命王国的潜在共同进化奠定了基础,而且也为生物防治策略和其他方面的基本原则打开了大门。植物代谢产物协同进化三联体(PSM)介导了植物、病毒和它们的昆虫媒介之间的相互作用。这个动态的三元组通过粉色和绿色箭头表示的相互作用来描绘,表示PSM介导的病毒、寄主植物和媒介之间的双向相互作用。
Viral infections in plants pose major challenges to agriculture and global food security in the twenty-first century. Plants have evolved a diverse range of specialized metabolites (PSMs) for defenses against pathogens. Although, PSMs-mediated plant-microorganism interactions have been widely discovered, these are mainly confined to plant-bacteria or plant-fungal interactions. PSM-mediated plant-virus interaction, however, is more complicated often due to the additional involvement of virus spreading vectors. Here, we review the major classes of PSMs and their emerging roles involved in antiviral resistances. In addition, evolutionary scenarios for PSM-mediated interactions between plant, virus and virus-transmitting vectors are presented. These advancements in comprehending the biochemical language of PSMs during plant-virus interactions not only lay the foundation for understanding potential co-evolution across life kingdoms, but also open a gateway to the fundamental principles of biological control strategies and beyond. The putative co-evolutionary triad of plant metabolites (PSM) mediated interactions between plant, viruses and their insect vectors. This dynamic trio is depicted through the interplay represented by pink and green arrows, signifying the PSM mediated bidirectional interactions occurring between the virus, the host plant, and the vector.
DOI: 10.1186/s12870-023-04041-0
发表时间: 2023-01-19
期刊: BMC PLANT BIOLOGY
影响因子: 5.3
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发表时间: 2017-08-01
影响因子: 5.9
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发表时间: 2021-11-06
期刊: Plants (Basel, Switzerland)
影响因子: --
作者:
Desmet S;Morreel K;Dauwe R
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发表时间: 2020-11-15
影响因子: 5.9
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