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Engineering Salidroside Biosynthetic Pathway in Hairy Root Cultures of Rhodiola crenulata Based on Metabolic Characterization of Tyrosine Decarboxylase

机译:基于酪氨酸脱羧酶代谢特征的红景天毛状根培养物中红景天苷生物合成途径的研究

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摘要

Tyrosine decarboxylase initializes salidroside biosynthesis. Metabolic characterization of tyrosine decarboxylase gene from Rhodiola crenulata (RcTYDC) revealed that it played an important role in salidroside biosynthesis. Recombinant 53 kDa RcTYDC converted tyrosine into tyramine. RcTYDC gene expression was induced coordinately with the expression of RcUDPGT (the last gene involved in salidroside biosynthesis) in SA/MeJA treatment; the expression of RcTYDC and RcUDPGT was dramatically upregulated by SA, respectively 49 folds and 36 folds compared with control. MeJA also significantly increased the expression of RcTYDC and RcUDPGT in hairy root cultures. The tissue profile of RcTYDC and RcUDPGT was highly similar: highest expression levels found in stems, higher expression levels in leaves than in flowers and roots. The gene expressing levels were consistent with the salidroside accumulation levels. This strongly suggested that RcTYDC played an important role in salidroside biosynthesis in R. crenulata. Finally, RcTYDC was used to engineering salidroside biosynthetic pathway in R. crenulata hairy roots via metabolic engineering strategy of overexpression. All the transgenic lines showed much higher expression levels of RcTYDC than non-transgenic one. The transgenic lines produced tyramine, tyrosol and salidroside at higher levels, which were respectively 3.21–6.84, 1.50–2.19 and 1.27–3.47 folds compared with the corresponding compound in non-transgenic lines. In conclusion, RcTYDC overexpression promoted tyramine biosynthesis that facilitated more metabolic flux flowing toward the downstream pathway and as a result, the intermediate tyrosol was accumulated more that led to the increased production of the end-product salidroside.
机译:酪氨酸脱羧酶启动红景天苷的生物合成。红景天酪氨酸脱羧酶基因(RcTYDC)的代谢特征表明,它在红景天苷的生物合成中起着重要作用。重组53 kDa RcTYDC将酪氨酸转化为酪胺。在SA / MeJA处理中,RcTYDC基因的表达与RcUDPGT(参与红景天苷生物合成的最后一个基因)的表达协调一致。与对照组相比,SA显着上调了RcTYDC和RcUDPGT的表达,分别为49倍和36倍。 MeJA还显着增加了毛状根培养物中RcTYDC和RcUDPGT的表达。 RcTYDC和RcUDPGT的组织特征高度相似:茎中发现最高的表达水平,叶子中的表达水平高于花和根。基因表达水平与红景天苷积累水平一致。这有力地表明,RcTYDC在酸枣中的红景天苷生物合成中起着重要作用。最后,通过过度表达的代谢工程策略,将RcTYDC用于工程化红景天毛状根中红景天苷的生物合成途径。所有转基因品系均显示出比非转基因品系高得多的RcTYDC表达水平。与非转基因品系中的相应化合物相比,转基因品系产生的酪胺,酪醇和红景天苷含量更高,分别是相应化合物的3.21-6.84、1.50-2.19和1.27-3.47倍。总之,RcTYDC的过度表达促进了酪胺的生物合成,从而促进了更多的代谢通量流向下游途径,因此,中间酪醇的积累更多,导致最终产物红景天苷的产量增加。

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