Heterologous gene expression system for the production of hydrolyzable tannin intermediates in herbaceous model plants.

IF 2.7 3区 生物学 Q2 PLANT SCIENCES
Journal of Plant Research Pub Date : 2023-11-01 Epub Date: 2023-08-01 DOI:10.1007/s10265-023-01484-2
Chihiro Oda-Yamamizo, Nobutaka Mitsuda, Carsten Milkowski, Hideyuki Ito, Kentaro Ezura, Ko Tahara
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引用次数: 0

Abstract

Aluminum toxicity is the main factor limiting the elongation of plant roots in acidic soil. The tree species Eucalyptus camaldulensis is considerably more resistant to aluminum than herbaceous model plants and crops. Hydrolyzable tannins (HTs) accumulating in E. camaldulensis roots can bind and detoxify the aluminum taken up by the roots. However, in herbaceous model plants, HTs do not accumulate and the genes involved in the HT biosynthetic pathway are largely unknown. The aim of this study was to establish a method for reconstituting the HT biosynthetic pathway in the HT non-accumulating model plant Nicotiana benthamiana. Four E. camaldulensis enzymes were transiently expressed in N. benthamiana leaves via Agrobacterium tumefaciens-mediated transformation. These enzymes included dehydroquinate dehydratase/shikimate dehydrogenases (EcDQD/SDH2 and EcDQD/SDH3), which catalyze the synthesis of gallic acid, the first intermediate of the HT biosynthetic pathway that branches off from the shikimate pathway. The others were UDP-glycosyltransferases (UGT84A25 and UGT84A26), which catalyze the conversion of gallic acid to β-glucogallin, the second intermediate. The co-expression of the EcDQD/SDHs in transgenic N. benthamiana leaf regions promoted the synthesis of gallic acid. Moreover, the co-expression of the UGT84As in addition to the EcDQD/SDHs resulted in the biosynthesis of β-glucogallin, the universal metabolic precursor of HTs. Thus, we successfully reconstituted a portion of the HT biosynthetic pathway in HT non-accumulating N. benthamiana plants. This heterologous gene expression system will be useful for co-expressing candidate genes involved in downstream reactions in the HT biosynthetic pathway and for clarifying their in planta functions.

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用于在草本模式植物中生产可水解单宁中间体的异源基因表达系统。
铝的毒性是限制酸性土壤中植物根系伸长的主要因素。赤桉树种比草本模式植物和作物对铝的抗性高得多。在赤藓根中积累的水解单宁(HTs)可以结合根吸收的铝并对其解毒。然而,在草本模式植物中,HT不会积累,参与HT生物合成途径的基因在很大程度上是未知的。本研究的目的是建立一种在HT非积累模式植物本氏烟草中重建HT生物合成途径的方法。通过根癌农杆菌介导的转化,在本氏N.benthamiana叶片中瞬时表达了四种赤霉毒素酶。这些酶包括脱氢奎宁酸脱水酶/莽草酸脱氢酶(EcDQD/SDH2和EcDQD/SDH3),它们催化没食子酸的合成,没食子酸是HT生物合成途径的第一个中间体,从莽草酸途径分支出来。其他是UDP糖基转移酶(UGT84A25和UGT84A26),它们催化没食子酸转化为第二中间体β-葡糖凝集素。EcDQD/SDHs在转基因本氏N.benthamiana叶区的共表达促进了没食子酸的合成。此外,UGT84As与EcDQD/SDHs的共表达导致了HTs的普遍代谢前体β-葡糖凝集素的生物合成。因此,我们成功地在HT不积累的本氏N.benthamiana植物中重建了部分HT生物合成途径。这种异源基因表达系统将有助于共表达参与HT生物合成途径下游反应的候选基因,并澄清其在植物中的功能。
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来源期刊
Journal of Plant Research
Journal of Plant Research 生物-植物科学
CiteScore
5.40
自引率
3.60%
发文量
59
审稿时长
1 months
期刊介绍: The Journal of Plant Research is an international publication that gathers and disseminates fundamental knowledge in all areas of plant sciences. Coverage extends to every corner of the field, including such topics as evolutionary biology, phylogeography, phylogeny, taxonomy, genetics, ecology, morphology, physiology, developmental biology, cell biology, molecular biology, biochemistry, biophysics, bioinformatics, and systems biology. The journal presents full-length research articles that describe original and fundamental findings of significance that contribute to understanding of plants, as well as shorter communications reporting significant new findings, technical notes on new methodology, and invited review articles.
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