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BAHD 酰基转移酶在长春花根中催化 tabersonine 衍生物的 19-O-乙酰化,使单萜吲哚生物碱的组合合成成为可能。

A BAHD acyltransferase catalyzing 19-O-acetylation of tabersonine derivatives in roots of Catharanthus roseus enables combinatorial synthesis of monoterpene indole alkaloids.

机构信息

EA2106 'Biomolécules et Biotechnologies Végétales', Université de Tours, Tours, France.

Department of Biological Chemistry, The John Innes Centre, Norwich, NR4 7UH, UK.

出版信息

Plant J. 2018 May;94(3):469-484. doi: 10.1111/tpj.13868. Epub 2018 Mar 27.

Abstract

While the characterization of the biosynthetic pathway of monoterpene indole alkaloids (MIAs) in leaves of Catharanthus roseus is now reaching completion, only two enzymes from the root counterpart dedicated to tabersonine metabolism have been identified to date, namely tabersonine 19-hydroxylase (T19H) and minovincine 19-O-acetyltransferase (MAT). Albeit the recombinant MAT catalyzes MIA acetylation at low efficiency in vitro, we demonstrated that MAT was inactive when expressed in yeast and in planta, suggesting an alternative function for this enzyme. Therefore, through transcriptomic analysis of periwinkle adventitious roots, several other BAHD acyltransferase candidates were identified based on the correlation of their expression profile with T19H and found to localize in small genomic clusters. Only one, named tabersonine derivative 19-O-acetyltransferase (TAT) was able to acetylate the 19-hydroxytabersonine derivatives from roots, such as minovincinine and hörhammericine, following expression in yeast. Kinetic studies also showed that the recombinant TAT was specific for root MIAs and displayed an up to 200-fold higher catalytic efficiency than MAT. In addition, gene expression analysis, protein subcellular localization and heterologous expression in Nicotiana benthamiana were in agreement with the prominent role of TAT in acetylation of root-specific MIAs, thereby redefining the molecular determinants of the root MIA biosynthetic pathway. Finally, identification of TAT provided a convenient tool for metabolic engineering of MIAs in yeast enabling efficiently mixing different biosynthetic modules spatially separated in the whole plant. This combinatorial synthesis associating several enzymes from Catharanthus roseus resulted in the conversion of tabersonine in tailor-made MIAs bearing both leaf and root-type decorations.

摘要

虽然长春花叶片中单萜吲哚生物碱(MIAs)生物合成途径的特征现在已经接近完成,但迄今为止,仅从根部分离出两种专门用于塔博素代谢的酶,即塔博素 19-羟化酶(T19H)和长春质碱 19-O-乙酰基转移酶(MAT)。尽管重组 MAT 在体外以低效率催化 MIA 乙酰化,但我们证明 MAT 在酵母和植物中表达时没有活性,这表明该酶具有替代功能。因此,通过长春花不定根的转录组分析,根据其表达谱与 T19H 的相关性,基于候选者表达谱与 T19H 的相关性,鉴定了其他几种 BAHD 酰基转移酶候选物,并发现它们定位于小基因组簇中。只有一种名为塔博素衍生物 19-O-乙酰基转移酶(TAT)的酶能够在酵母中表达后乙酰化根中的 19-羟基塔博素衍生物,如米诺维辛碱和霍赫马灵碱。动力学研究还表明,重组 TAT 对根 MIAs 具有特异性,比 MAT 的催化效率高 200 倍。此外,基因表达分析、蛋白质亚细胞定位和在黄花烟中的异源表达与 TAT 在根特异性 MIAs 乙酰化中的突出作用一致,从而重新定义了根 MIA 生物合成途径的分子决定因素。最后,TAT 的鉴定为 MIAs 在酵母中的代谢工程提供了便利的工具,使不同的生物合成模块能够在整个植物中空间分离并进行有效混合。这种组合合成将长春花中的几种酶结合在一起,使塔博素转化为具有叶型和根型特征的定制 MIA。

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