Multi-Omics Analysis Reveals Molecular Responses of Alkaloid Content Variations in Lycoris aurea Across Different Locations.

IF 6 1区 生物学 Q1 PLANT SCIENCES Plant, Cell & Environment Pub Date : 2024-10-07 DOI:10.1111/pce.15187
You-Wei Zuo, Miao-Hua Quan, Guang-Hua Liu, Xiao Zhang, Na-Na Long, Shi-Qi You, Yang Peng, Hong-Ping Deng
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Abstract

Lycoris aurea, celebrated for its visually striking flowers and significant medicinal value due to the presence of alkaloids such as lycorine and galanthamine, has intricate yet poorly understood regulatory mechanisms. This study provides a detailed examination of the transcriptomic, metabolomic and ecological dynamics of L. aurea, aiming to elucidate the underlying molecular mechanisms of alkaloid biosynthesis. Our comparative analysis across different ecological settings highlighted key genes involved in alkaloid biosynthesis, such as genes encoding aldehyde dehydrogenase and norbelladine 4'-O-methyltransferase, which were distinctively increased in the high alkaloids-producing group. We identified a total of 6871 differentially expressed genes and 915 metabolites involved in pathways like terpenoid backbone biosynthesis, phenylalanine, tyrosine and tryptophan biosynthesis. Protein interaction network analysis revealed significant upregulation of photosynthesis, photosystem and photosynthetic membrane pathways in the alkaloids-producing region. Furthermore, our research delineated the interactions among soil microbial communities, genes and plant and soil biochemical properties, noting that bacterial populations correlate with soil properties that favour the activation of metabolic pathways essential for alkaloid production. Collectively, this study advances our understanding of the genetic and metabolic alkaloid biosynthesis pathways in L. aurea, shedding light on the complex interactions that govern alkaloid production.

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多组学分析揭示了不同地区麝香草中生物碱含量变化的分子反应。
茜草(Lycoris aurea)因其美丽的花朵而闻名,并因含有番茄红素(lycorine)和加兰他敏(galanthamine)等生物碱而具有重要的药用价值。本研究详细考察了脲属植物的转录组、代谢组和生态动态,旨在阐明生物碱生物合成的潜在分子机制。我们对不同生态环境的比较分析突出显示了参与生物碱生物合成的关键基因,如编码醛脱氢酶和去甲铃兰碱 4'-O- 甲基转移酶的基因,这些基因在生物碱高产组明显增加。我们共鉴定出 6871 个差异表达基因和 915 个代谢物,它们涉及萜类骨架生物合成、苯丙氨酸、酪氨酸和色氨酸生物合成等途径。蛋白质相互作用网络分析显示,生物碱产区的光合作用、光合系统和光合膜途径有明显的上调。此外,我们的研究还描述了土壤微生物群落、基因以及植物和土壤生化特性之间的相互作用,注意到细菌数量与土壤特性相关,有利于激活生物碱生产所必需的代谢途径。总之,这项研究加深了我们对脲属植物生物碱的遗传和代谢生物合成途径的了解,揭示了生物碱生产过程中复杂的相互作用。
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来源期刊
Plant, Cell & Environment
Plant, Cell & Environment 生物-植物科学
CiteScore
13.30
自引率
4.10%
发文量
253
审稿时长
1.8 months
期刊介绍: Plant, Cell & Environment is a premier plant science journal, offering valuable insights into plant responses to their environment. Committed to publishing high-quality theoretical and experimental research, the journal covers a broad spectrum of factors, spanning from molecular to community levels. Researchers exploring various aspects of plant biology, physiology, and ecology contribute to the journal's comprehensive understanding of plant-environment interactions.
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