Genetic Blueprint of Herbaceous Peony Floral Scent: Evidence from Terpene Synthase, Nudix Hydrolase and Prenyltransferase

丙炔基转移酶 萜烯 生物 白芍 萜类 预酸化 生物化学 香叶醇 香茅醇 单萜 甲戊酸 代谢工程 甲戊酸途径 生物合成 尼禄 葡萄糖基转移酶 植物 单甘醇 环化酶 基因 代谢途径 氨基酸 环己酮 ATP合酶 植物对草食的防御
作者
Tingting Bao,Kimani Shadrack,Xiaotong Shan,Hongjie Li,L. Leng,Yue Li,Zhiqiang Wu,Xiang Gao
出处
期刊:Horticulture research [Nature Portfolio]
标识
DOI:10.1093/hr/uhag091
摘要

Abstract Volatile terpenes constitute a predominant class of floral scent emitted by Paeonia lactiflora. Despite their ecological and economical significance, the genetic blueprint of the underlying biosynthetic pathway remains poorly elucidated. Although a few terpene synthase (TPS) genes have been reported, the broader network of genes orchestrating terpene production in P. lactiflora is still largely unresolved. In this study, we attempted to address this gap by exploring the terpene biosynthetic pathway genes in P. lactiflora ‘Zifengyu’. β-caryophyllene, geraniol, citronellol and 1, 8-cineole were identified as the dominant floral terpenes, and catalytic functions of key proteins- terpene synthase (PlTPS), Nudix hydrolase (PlNUDX) and prenyltransferase (PlPT) were comprehensively characterized. Briefly, biochemical analyses revealed that six of the nine identified PlTPS proteins utilized diverse prenyl diphosphates to generate both monoterpenes and sesquiterpenes, while their products specificity were determined by plastidic or cytosolic localizations in planta. In particular, PlTPS4, PlTPS5 and PlTPS9 catalyzed the production of β-caryophyllene, 1, 8-cineole and geraniol, respectively. Besides, two amino acid residues were found to drive catalytic activity and product profiles in PlTPS4 and PlTPS5. Markedly, PlNUDX hydrolyzed GPP and NPP to yield geraniol and nerol thereby providing a plastid-independent pathway for monoterpene biosynthesis, and prenyltransferases were further functionally characterized to clarify the supply of prenyl diphosphates feeding into volatile terpenes. Collectively, these findings not only provide a mechanistic framework for understanding floral terpene biosynthesis in P. lactiflora but also reveal alternative metabolic routes that enrich its volatile profiles which could be utilized in scent improvement of ornamental plants.
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