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工程化变形虫 Dictyostelium discoideum 用于合成大麻素前体和其他聚酮化合物。

Engineering the amoeba Dictyostelium discoideum for biosynthesis of a cannabinoid precursor and other polyketides.

机构信息

Evolution of Microbial Interactions, Leibniz Institute for Natural Product Research and Infection Biology - Hans Knöll Institute (Leibniz-HKI), Jena, Germany.

Faculty of Biological Sciences, Friedrich Schiller University Jena, Jena, Germany.

出版信息

Nat Biotechnol. 2022 May;40(5):751-758. doi: 10.1038/s41587-021-01143-8. Epub 2022 Jan 6.

Abstract

Aromatic polyketides are natural polyphenolic compounds with a broad spectrum of pharmacological activities. Production of those metabolites in the model organisms Escherichia coli and Saccharomyces cerevisiae has been limited by the extensive cellular engineering needed for the coordinated biosynthesis of polyketides and their precursors. In contrast, the amoeba Dictyostelium discoideum is a native producer of secondary metabolites and harbors a wide, but largely unexplored, repertoire of genes for the biosynthesis of polyketides and terpenoids. Here we present D. discoideum as an advantageous chassis for the production of aromatic polyketides. By expressing its native and cognate plant polyketide synthase genes in D. discoideum, we demonstrate production of phlorocaprophenone, methyl-olivetol, resveratrol and olivetolic acid (OA), which is the central intermediate in the biosynthesis of cannabinoids. To facilitate OA synthesis, we further engineered an amoeba/plant inter-kingdom hybrid enzyme that produced OA from primary metabolites in two enzymatic steps, providing a shortcut in a synthetic cannabinoid pathway using the D. discoideum host system.

摘要

芳香族聚酮类化合物是具有广泛药理活性的天然多酚类化合物。在大肠杆菌和酿酒酵母等模式生物中,这些代谢产物的生产受到聚酮类化合物及其前体协调生物合成所需的广泛细胞工程的限制。相比之下,变形虫 D. discoideum 是次生代谢产物的天然生产者,拥有广泛但在很大程度上尚未开发的聚酮类化合物和萜烯类化合物生物合成基因库。在这里,我们将 D. discoideum 视为生产芳香族聚酮类化合物的有利底盘。通过在 D. discoideum 中表达其天然和同源植物聚酮合酶基因,我们证明了 phlorocaprophenone、methyl-olivetol、白藜芦醇和橄榄酸(OA)的生产,OA 是大麻素生物合成的中心中间体。为了促进 OA 的合成,我们进一步设计了一种变形虫/植物跨界杂种酶,该酶可通过两步酶促反应从初级代谢物中产生 OA,为使用 D. discoideum 宿主系统的合成大麻素途径提供了捷径。

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