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Functional characterization of ent-copalyl diphosphate synthase kaurene synthase and kaurene oxidase in the Salvia miltiorrhiza gibberellin biosynthetic pathway

机译:丹参丹参生物合成途径中对苯二甲酰二磷酸合酶月桂烯合酶和月桂烯氧化酶的功能表征

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摘要

Salvia miltiorrhiza Bunge is highly valued in traditional Chinese medicine for its roots and rhizomes. Its bioactive diterpenoid tanshinones have been reported to have many pharmaceutical activities, including antibacterial, anti-inflammatory, and anticancer properties. Previous studies found four different diterpenoid biosynthetic pathways from the universal diterpenoid precursor (E,E,E)-geranylgeranyl diphosphate (GGPP) in S. miltiorrhiza. Here, we describe the functional characterization of ent-copalyl diphosphate synthase (SmCPSent), kaurene synthase (SmKS) and kaurene oxidase (SmKO) in the gibberellin (GA) biosynthetic pathway. SmCPSent catalyzes the cyclization of GGPP to ent-copalyl diphosphate (ent-CPP), which is converted to ent-kaurene by SmKS. Then, SmKO catalyzes the three-step oxidation of ent-kaurene to ent-kaurenoic acid. Our results show that the fused enzyme SmKS-SmCPSent increases ent-kaurene production by several fold compared with separate expression of SmCPSent and SmKS in yeast strains. In this study, we clarify the GA biosynthetic pathway from GGPP to ent-kaurenoic acid and provide a foundation for further characterization of the subsequent enzymes involved in this pathway. These insights may allow for better growth and the improved accumulation of bioactive tanshinones in S. miltiorrhiza through the regulation of the expression of these genes during developmental processes.
机译:丹参具有根和根茎的功效,在中药中具有很高的价值。据报道其生物活性二萜类丹参酮具有许多药物活性,包括抗菌,抗炎和抗癌特性。先前的研究发现,来自通用双萜类前体(E,E,E)-香叶基香叶基二磷酸香叶基二磷酸(GGPP)的四种不同的双萜生物合成途径。在这里,我们描述了赤霉素(GA)生物合成途径中的对苯二甲酰二磷酸合酶(SmCPSent),贝壳杉烯合酶(SmKS)和贝壳杉烯氧化酶(SmKO)的功能表征。 SmCPSent催化GGPP的环化反应生成对戊基二磷酸对苯二酚(ent-CPP),后者通过SmKS转化为对-贝壳杉烯。然后,SmKO催化将三聚天竺葵烯转化为三聚天竺葵烯酸的三步氧化。我们的结果表明,与酵母菌株中SmCPSent和SmKS的单独表达相比,融合酶SmKS-SmCPSent可以提高Ent-天花烯的产量几倍。在这项研究中,我们阐明了从GGPP到 ent -月桂酸的GA生物合成途径,并为进一步表征该途径中的后续酶提供了基础。这些见解可以使 S中更好的生长和改善生物活性tanshinones的积累。通过调节这些基因在发育过程中的表达来达到目的。

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