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该基因组的染色体水平组装为香豆素的结构多样性提供了见解。

The chromosome-scale assembly of the genome provides insight into the structural diversity of coumarins.

作者信息

Li Qien, Dai Yiqun, Huang Xin-Cheng, Sun Lanlan, Wang Kaixuan, Guo Xiao, Xu Dingqiao, Wan Digao, An Latai, Wang Zixuan, Tang Huanying, Qi Qi, Zeng Huihui, Qin Minjian, Xue Jia-Yu, Zhao Yucheng

机构信息

Tibetan Medicine Research Center of Qinghai University, Tibetan Medical College, Qinghai University, Xining 810016, China.

School of Pharmacy, Bengbu Medical University, Bengbu 233030, China.

出版信息

Acta Pharm Sin B. 2024 Aug;14(8):3760-3773. doi: 10.1016/j.apsb.2024.04.005. Epub 2024 Apr 10.

Abstract

Coumarins, derived from the phenylpropanoid pathway, represent one of the primary metabolites found in angiosperms. The alignment of the tetrahydropyran (THP) and tetrahydrofuran (THF) rings with the lactone structure results in the formation of at least four types of complex coumarins. However, the mechanisms underlying the structural diversity of coumarin remain poorly understood. Here, we report the chromosome-level genome assembly of , spanning 1.64 Gb, with a contig N50 value of 22.7 Mb and 60,021 annotated protein-coding genes. Additionally, we identified the key enzymes responsible for shaping the structural diversity of coumarins, including two -coumaroyl CoA 2'-hydroxylases crucial for simple coumarins basic skeleton architecture, two UbiA prenyltransferases responsible for angular or linear coumarins biosynthesis, and five CYP736 cyclases involved in THP and THF ring formation. Notably, two bifunctional enzymes capable of catalyzing both demethylsuberosin and osthenol were identified for the first time. Evolutionary analysis implies that tandem and ectopic duplications of the CYP736 subfamily, specifically arising in the Apiaceae, contributed to the structural diversity of coumarins in . Conclusively, this study proposes a parallel evolution scenario for the complex coumarin biosynthetic pathway among different angiosperms and provides essential synthetic biology elements for the heterologous industrial production of coumarins.

摘要

香豆素源自苯丙烷类途径,是被子植物中发现的主要代谢产物之一。四氢吡喃(THP)环和四氢呋喃(THF)环与内酯结构的排列导致至少四种类型的复杂香豆素的形成。然而,香豆素结构多样性背后的机制仍知之甚少。在此,我们报告了[植物名称]的染色体水平基因组组装,其大小为1.64Gb,重叠群N50值为22.7Mb,有60,021个注释的蛋白质编码基因。此外,我们鉴定了负责塑造香豆素结构多样性的关键酶,包括两种对简单香豆素基本骨架结构至关重要的香豆酰辅酶A 2'-羟化酶、两种负责角型或线型香豆素生物合成的泛醌A异戊烯基转移酶,以及五种参与THP和THF环形成的CYP736环化酶。值得注意的是,首次鉴定出两种能够催化去甲基紫堇灵和蛇床子素的双功能酶。进化分析表明,CYP736亚家族的串联和异位重复,特别是在伞形科中出现的,促成了[植物名称]中香豆素的结构多样性。总之,本研究提出了不同被子植物间复杂香豆素生物合成途径的平行进化情景,并为香豆素的异源工业化生产提供了重要的合成生物学元件。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fb4d/11365381/5c10b3beb174/ga1.jpg

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