比较转录组分析揭示爪哇长椒果实生物碱多样性相关基因

Q4 Agricultural and Biological Sciences
Methat Meechuen, Lalita Pimsawang, Tanapon Chaisan, Sompid Samipak, Wanchai Pluempanupat, Piyada Juntawong
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引用次数: 0

摘要

生物碱是一类次生代谢产物,在植物生理中起着多方面的作用,包括防御机制和与其他生物的相互作用。爪哇长椒果实中的生物碱由于其天然来源和杀虫剂特性,为人工合成农药提供了潜在的替代品。然而,需要特定生物碱生物合成途径的信息,以通过代谢工程提高个体生物碱的生产。在这里,我们使用HPLC分析来证明果实成熟会影响白杨生物碱的多样性。幼果、青熟果和红熟果的从头转录组学分析显示,胡椒碱生物合成途径基因在成熟果实中高度上调。然而,成熟果实中胡椒酸甲酯和几内亚碱的积累增强,需要成熟相关的差异基因表达来同步生物碱的生物合成。基因表达聚类和功能富集分析鉴定出一大批参与不同生物合成过程的基因在成熟果实中明确富集。一组编码“生物碱生物合成”的基因在成熟果实中显著上调,表明它们可能在果实发育后期直接作用于生物碱多样性。该研究为生物碱多样性和产量的提高提供了代谢工程的基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comparative Transcriptome Analysis Reveals Genes Associated with Alkaloid Diversity in Javanese Long Pepper (Piper retrofractum) Fruits
Alkaloids are a class of secondary metabolites that play multifaceted roles in plant physiology, including defense mechanisms and interactions with other organisms. The alkaloids from Piper retrofractum (Javanese long pepper) fruits offer potential alternatives to synthetic pesticides due to their natural origin and insecticide properties. However, information on particular alkaloid biosynthesis pathways is required to enhance individual alkaloid production via metabolic engineering. Here, we perform HPLC profiling to demonstrate that fruit ripening influences the alkaloid diversity in P. retrofractum. De novo transcriptomic profiling of young, green mature, and red ripened fruits revealed that the piperine biosynthesis pathway genes were highly upregulated in the mature fruits. However, an enhanced accumulation of methyl piperate and guineensine in the ripened fruit was observed, entailing ripening-related differential gene expression to synchronize the alkaloid biosyntheses. Gene expression clustering and functional enrichment analysis identified a large group of genes involved in diverse biosynthetic processes explicitly enriched in the ripened fruits. A cohort of genes encoding for “Alkaloid Biosynthesis”, remarkably upregulated in the ripening fruits, indicates they may function directly in alkaloid diversity during a later stage of fruit development. This study provides the basis for metabolic engineering to enhance alkaloid diversity and production.
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来源期刊
International Journal of Plant Biology
International Journal of Plant Biology Agricultural and Biological Sciences-Plant Science
CiteScore
2.00
自引率
0.00%
发文量
44
审稿时长
10 weeks
期刊介绍: The International Journal of Plant Biology is an Open Access, online-only, peer-reviewed journal that considers scientific papers in all different subdisciplines of plant biology, such as physiology, molecular biology, cell biology, development, genetics, systematics, ecology, evolution, ecophysiology, plant-microbe interactions, mycology and phytopathology.
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