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利用替代酶活性在酵母中生产福司可林前体11β-羟基-氧化贝壳杉烯。

Production of the forskolin precursor 11β-hydroxy-manoyl oxide in yeast using surrogate enzymatic activities.

作者信息

Ignea Codruta, Ioannou Efstathia, Georgantea Panagiota, Trikka Fotini A, Athanasakoglou Anastasia, Loupassaki Sofia, Roussis Vassilios, Makris Antonios M, Kampranis Sotirios C

机构信息

Department of Biochemistry, School of Medicine, University of Crete, P.O. Box 2208, 71003, Heraklion, Greece.

Department of Pharmacognosy and Chemistry of Natural Products, School of Pharmacy, University of Athens, Panepistimiopolis Zografou, 15771, Athens, Greece.

出版信息

Microb Cell Fact. 2016 Feb 26;15:46. doi: 10.1186/s12934-016-0440-8.

Abstract

BACKGROUND

Several plant diterpenes have important biological properties. Among them, forskolin is a complex labdane-type diterpene whose biological activity stems from its ability to activate adenylyl cyclase and to elevate intracellular cAMP levels. As such, it is used in the control of blood pressure, in the protection from congestive heart failure, and in weight-loss supplements. Chemical synthesis of forskolin is challenging, and production of forskolin in engineered microbes could provide a sustainable source. To this end, we set out to establish a platform for the production of forskolin and related epoxy-labdanes in yeast.

RESULTS

Since the forskolin biosynthetic pathway has only been partially elucidated, and enzymes involved in terpene biosynthesis frequently exhibit relaxed substrate specificity, we explored the possibility of reconstructing missing steps of this pathway employing surrogate enzymes. Using CYP76AH24, a Salvia pomifera cytochrome P450 responsible for the oxidation of C-12 and C-11 of the abietane skeleton en route to carnosic acid, we were able to produce the forskolin precursor 11β-hydroxy-manoyl oxide in yeast. To improve 11β-hydroxy-manoyl oxide production, we undertook a chassis engineering effort involving the combination of three heterozygous yeast gene deletions (mct1/MCT1, whi2/WHI2, gdh1/GDH1) and obtained a 9.5-fold increase in 11β-hydroxy-manoyl oxide titers, reaching 21.2 mg L(-1).

CONCLUSIONS

In this study, we identify a surrogate enzyme for the specific and efficient hydroxylation of manoyl oxide at position C-11β and establish a platform that will facilitate the synthesis of a broad range of tricyclic (8,13)-epoxy-labdanes in yeast. This platform forms a basis for the heterologous production of forskolin and will facilitate the elucidation of subsequent steps of forskolin biosynthesis. In addition, this study highlights the usefulness of using surrogate enzymes for the production of intermediates of complex biosynthetic pathways. The combination of heterozygous deletions and the improved yeast strain reported here will provide a useful tool for the production of numerous other isoprenoids.

摘要

背景

几种植物二萜具有重要的生物学特性。其中,福司可林是一种复杂的半日花烷型二萜,其生物活性源于其激活腺苷酸环化酶和提高细胞内cAMP水平的能力。因此,它被用于控制血压、预防充血性心力衰竭以及减肥补充剂中。福司可林的化学合成具有挑战性,而在工程微生物中生产福司可林可以提供可持续的来源。为此,我们着手建立一个在酵母中生产福司可林和相关环氧半日花烷的平台。

结果

由于福司可林生物合成途径仅得到部分阐明,且参与萜类生物合成的酶通常表现出宽松的底物特异性,我们探索了使用替代酶重建该途径缺失步骤的可能性。利用CYP76AH24,一种负责在生成迷迭香酸的途径中将松香烷骨架的C-12和C-11氧化的丹参细胞色素P450,我们能够在酵母中生产福司可林前体11β-羟基-马尼醇氧化物。为了提高11β-羟基-马尼醇氧化物的产量,我们进行了底盘工程,涉及三个杂合酵母基因缺失(mct1/MCT1、whi2/WHI2、gdh1/GDH1)的组合,并使11β-羟基-马尼醇氧化物滴度提高了9.5倍,达到21.2 mg L(-1)。

结论

在本研究中,我们鉴定了一种用于在C-11β位置特异性和高效羟基化马尼醇氧化物的替代酶,并建立了一个将有助于在酵母中合成多种三环(8,13)-环氧半日花烷的平台。该平台构成了福司可林异源生产的基础,并将有助于阐明福司可林生物合成的后续步骤。此外,本研究强调了使用替代酶生产复杂生物合成途径中间体的有用性。本文报道的杂合缺失和改良酵母菌株的组合将为生产许多其他类异戊二烯提供有用的工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4e33/4769550/0652f7fcd5f2/12934_2016_440_Fig1_HTML.jpg

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