Lineage-specific patterns in the Moraceae family allow identification of convergent P450 enzymes involved in furanocoumarin biosynthesis

IF 8.1 1区 生物学 Q1 PLANT SCIENCES New Phytologist Pub Date : 2025-01-08 DOI:10.1111/nph.20381
Alexandre Bouillé, Romain Larbat, Rashmi Kumari, Alexandre Olry, Clément Charles, David R. Nelson, Janet Thornton, Cloé Villard, Alain Hehn
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Abstract

  • Specialized metabolites are molecules involved in plants' interaction with their environment. Elucidating their biosynthetic pathways is a challenging but rewarding task, leading to societal applications and ecological insights. Furanocoumarins emerged multiple times in Angiosperms, raising the question of how different enzymes evolved into catalyzing identical reactions.
  • To identify enzymes producing lineage-specific metabolites, an evolutionary-based approach was developed and applied to furanocoumarin biosynthesis in Ficus carica (Moraceae). This led to the characterization of CYP71B129–131a, three P450 enzymes whose evolution of the function was investigated using phylogenetics, structural comparisons and site-directed mutagenesis.
  • CYP71B129 and CYP71B130,131a were found to hydroxylate umbelliferone (coumarin) and xanthotoxin (furanocoumarin), respectively. Results suggest that CYP71Bs xanthotoxin hydroxylase activity results from duplications and functional divergence of umbelliferone hydroxylase genes. Structural comparisons highlighted an amino acid affecting CYP71Bs substrate specificity, which may play a key role in allowing xanthotoxin hydroxylation in several P450 subfamilies.
  • CYP71B130-131a characterization validates the proposed enzyme-discovery approach, which can be applied to different pathways and help to avoid the classic bottlenecks of specialized metabolism elucidation. The CYP71Bs also exemplify how furanocoumarin-biosynthetic enzymes can stem from coumarin-biosynthetic ones and provides insights into the molecular mechanisms underlying the multiple emergences of xanthotoxin hydroxylation in distant P450 subfamilies.
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桑科家族的谱系特异性模式允许鉴定参与呋喃香豆素生物合成的聚合P450酶
特化代谢物是参与植物与环境相互作用的分子。阐明它们的生物合成途径是一项具有挑战性但有益的任务,将导致社会应用和生态见解。呋喃香豆素在被子植物中多次出现,这就提出了不同的酶是如何进化成催化相同反应的问题。为了鉴定产生谱系特异性代谢物的酶,开发了一种基于进化的方法,并将其应用于无花果(Moraceae)中呋喃香豆素的生物合成。这导致CYP71B129-131a的特征,三个P450酶的功能进化研究使用系统发育,结构比较和定点突变。CYP71B129和CYP71B130,131a分别具有羟基化伞形素(香豆素)和黄毒素(呋喃香豆素)的功能。结果表明,cyp71b黄毒素羟化酶活性与伞形草酮羟化酶基因的重复和功能分化有关。结构比较强调了一个影响cyp71b底物特异性的氨基酸,这可能在几个P450亚家族中允许黄毒素羟基化中起关键作用。CYP71B130-131a的表征验证了所提出的酶发现方法,该方法可以应用于不同的途径,并有助于避免特化代谢阐明的经典瓶颈。cyp71b还说明了呋喃香豆素生物合成酶是如何从香豆素生物合成酶衍生而来的,并为遥远的P450亚家族中多种黄毒素羟基化的分子机制提供了见解。
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来源期刊
New Phytologist
New Phytologist 生物-植物科学
自引率
5.30%
发文量
728
期刊介绍: New Phytologist is an international electronic journal published 24 times a year. It is owned by the New Phytologist Foundation, a non-profit-making charitable organization dedicated to promoting plant science. The journal publishes excellent, novel, rigorous, and timely research and scholarship in plant science and its applications. The articles cover topics in five sections: Physiology & Development, Environment, Interaction, Evolution, and Transformative Plant Biotechnology. These sections encompass intracellular processes, global environmental change, and encourage cross-disciplinary approaches. The journal recognizes the use of techniques from molecular and cell biology, functional genomics, modeling, and system-based approaches in plant science. Abstracting and Indexing Information for New Phytologist includes Academic Search, AgBiotech News & Information, Agroforestry Abstracts, Biochemistry & Biophysics Citation Index, Botanical Pesticides, CAB Abstracts®, Environment Index, Global Health, and Plant Breeding Abstracts, and others.
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