樟科植物香叶醇合成酶的鉴定和功能分析

IF 3.4 3区 生物学 Q1 PLANT SCIENCES
Jiexi Hou, Yuzhou Wu, Lei Lei, Yanbo Wang, Qingyan Ling, Jie Zhang, Jiao Zhao, Zhinong Jin, Haiyan Zhang
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引用次数: 0

摘要

市场对含有柠檬醛的精油的需求日益增长。我们的研究小组通过考察中国整个欧樟树原生分布区的 1000 多棵野生欧樟树,发现了一种叶片柠檬醛含量较高的罕见欧樟树化学型。由于樟科植物适合大规模栽培,因此被认为是一种很有前景的天然柠檬醛来源。然而,人们对 C. officinarum 中柠檬醛生物合成的分子机制知之甚少。本研究对不同柠檬醛含量的 C. officinarum 进行了转录组分析,结果表明推测的香叶醇合成酶基因(CoGES)的表达与柠檬醛含量之间存在很强的正相关性。CoGES cDNA 已被克隆,CoGES 蛋白与其他单萜合成酶具有高度相似性。以二磷酸香叶酯(GPP)为底物对 CoGES 进行酶切测定,得到的单一产物为香叶醇,而香叶醇正是柠檬醛的前体。在烟草中进一步瞬时表达 CoGES 后,香叶醇的相对含量增加,并出现了一种新物质--拈花酮。这些研究结果表明,CoGES 是一种香叶醇合成酶编码基因,其编码的蛋白质可催化 GPP 转化为香叶醇,而香叶醇在体内通过未知的机制进一步转化为香叶醛和 neral。这些发现拓展了我们对月桂科植物柠檬醛生物合成的认识。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Identification and functional analysis of a deduced geraniol synthase from Camphora officinarum

Identification and functional analysis of a deduced geraniol synthase from Camphora officinarum

The market demand for essential oil containing citral is increasing. Our research group identified a rare chemotype of Camphora officinarum whose leaves are high in citral content by examining over 1000 wild trees across the entire native distribution area of C. officinarum in China. Because C. officinarum is suitable for large-scale cultivation, it is therefore seen as a promising source of natural citral. However, the molecular mechanism of citral biosynthesis in C. officinarum is poorly understood. In this study, transcriptomic analyses of C. officinarum with different citral contents revealed a strong positive correlation between the expression of a putative geraniol synthase gene (CoGES) and citral content. The CoGES cDNA was cloned, and the CoGES protein shared high similarity with other monoterpene synthases. Enzymatic assays of CoGES with geranyl diphosphate (GPP) as substrate yielded geraniol as the single product, which is the precursor of citral. Further transient expression of CoGES in Nicotiana benthamiana resulted in a higher relative content of geranial and the appearance of a new substance, neral. These findings indicate that CoGES is a geraniol synthase-encoding gene, and the encoded protein can catalyze the transformation of GPP into geraniol, which is further converted into geranial and neral through an unknown mechanism in vivo. These findings expand our understanding of citral biosynthesis in Lauraceae plants.

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来源期刊
CiteScore
7.10
自引率
0.00%
发文量
126
期刊介绍: Founded in 1995, Physiology and Molecular Biology of Plants (PMBP) is a peer reviewed monthly journal co-published by Springer Nature. It contains research and review articles, short communications, commentaries, book reviews etc., in all areas of functional plant biology including, but not limited to plant physiology, biochemistry, molecular genetics, molecular pathology, biophysics, cell and molecular biology, genetics, genomics and bioinformatics. Its integrated and interdisciplinary approach reflects the global growth trajectories in functional plant biology, attracting authors/editors/reviewers from over 98 countries.
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