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破坏甘草纤维素合酶衍生糖基转移酶基因证明了其在植物体内参与大豆皂甙生物合成的作用。

Disruption of a licorice cellulose synthase-derived glycosyltransferase gene demonstrates its in planta role in soyasaponin biosynthesis.

机构信息

Department of Biotechnology, Graduate School of Engineering, Osaka University, 2-1 Yamadaoka, Suita, Osaka, 565-0871, Japan.

Faculty of Pharmaceutical Sciences, Health Sciences University of Hokkaido, 1757, Kanazawa, Tobetsu, Hokkaido, 061-0293, Japan.

出版信息

Plant Cell Rep. 2023 Dec 23;43(1):15. doi: 10.1007/s00299-023-03095-6.

Abstract

CRISPR-Cas9-mediated disruption of a licorice cellulose synthase-derived glycosyltransferase gene, GuCSyGT, demonstrated the in planta role of GuCSyGT as the enzyme catalyzing 3-O-glucuronosylation of triterpenoid aglycones in soyasaponin biosynthesis. Triterpenoid glycosides (saponins) are a large, structurally diverse group of specialized metabolites in plants, including the sweet saponin glycyrrhizin produced by licorice (Glycyrrhiza uralensis) and soyasaponins that occur widely in legumes, with various bioactivities. The triterpenoid saponin biosynthetic pathway involves the glycosylation of triterpenoid sapogenins (the non-sugar part of triterpenoid saponins) by glycosyltransferases (GTs), leading to diverse saponin structures. Previously, we identified a cellulose synthase-derived GT (CSyGT), as a newly discovered class of triterpenoid GT from G. uralensis. GuCSyGT expressed in yeast, which could transfer the sugar glucuronic acid to the C3 position of glycyrrhetinic acid and soyasapogenol B, which are the sapogenins of glycyrrhizin and soyasaponin I, respectively. This suggested that GuCSyGT is involved in the biosynthesis of glycyrrhizin and soyasaponin I. However, the in planta role of GuCSyGT in saponin biosynthesis remains unclear. In this study, we generated GuCSyGT-disrupted licorice hairy roots using CRISPR-Cas9-mediated genome editing and analyzed the saponin content. This revealed that soyasaponin I was completely absent in GuCSyGT-disrupted lines, demonstrating the in planta role of GuCSyGT in saponin biosynthesis.

摘要

CRISPR-Cas9 介导的甘草纤维素合酶衍生糖基转移酶基因 GuCSyGT 的敲除,证明了 GuCSyGT 在植物体内作为催化三萜苷元 aglycones 在大豆皂苷生物合成中 3-O-葡萄糖醛酸基化的酶的作用。三萜糖苷(皂苷)是植物中一大类结构多样的特殊代谢物,包括甘草(Glycyrrhiza uralensis)产生的甜味皂苷甘草甜素和广泛存在于豆科植物中的大豆皂苷,具有多种生物活性。三萜皂苷生物合成途径涉及糖基转移酶(GTs)对三萜皂苷元(三萜皂苷的非糖部分)的糖基化,导致不同的皂苷结构。先前,我们从甘草中鉴定出一种纤维素合酶衍生的 GT(CSyGT),作为一种新发现的三萜 GT 类。在酵母中表达的 GuCSyGT 可以将糖基葡萄糖醛酸转移到甘草次酸和大豆皂苷元 B 的 C3 位置,它们分别是甘草甜素和大豆皂苷 I 的皂苷元。这表明 GuCSyGT 参与了甘草甜素和大豆皂苷 I 的生物合成。然而,GuCSyGT 在皂苷生物合成中的植物内作用尚不清楚。在这项研究中,我们使用 CRISPR-Cas9 介导的基因组编辑生成了 GuCSyGT 敲除的甘草毛状根,并分析了皂苷含量。这表明在 GuCSyGT 敲除系中完全不存在大豆皂苷 I,证明了 GuCSyGT 在皂苷生物合成中的植物内作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6459/10746781/3d66e482196a/299_2023_3095_Fig1_HTML.jpg

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