Institute of Pharmacy and Molecular Biotechnology, Heidelberg University, Heidelberg, Germany.
Biotechnol J. 2009 Dec;4(12):1684-703. doi: 10.1002/biot.200900229.
Plants produce a high diversity of natural products or secondary metabolites which are important for the communication of plants with other organisms. A prominent function is the protection against herbivores and/or microbial pathogens. Some natural products are also involved in defence against abiotic stress, e.g. UV-B exposure. Many of the secondary metabolites have interesting biological properties and quite a number are of medicinal importance. Because the production of the valuable natural products, such as the anticancer drugs paclitaxel, vinblastine or camptothecin in plants is a costly process, biotechnological alternatives to produce these alkaloids more economically become increasingly important. This review provides an overview of the state of art to produce alkaloids in recombinant microorganisms, such as bacteria or yeast. Some progress has been made in metabolic engineering usually employing a single recombinant alkaloid gene. More importantly, for benzylisoquinoline, monoterpene indole and diterpene alkaloids (taxanes) as well as some terpenoids and phenolics the proof of concept for production of complex alkaloids in recombinant Escherichia coli and yeast has already been achieved. In a long-term perspective, it will probably be possible to generate gene cassettes for complete pathways, which could then be used for production of valuable natural products in bioreactors or for metabolic engineering of crop plants. This will improve their resistance against herbivores and/or microbial pathogens.
植物产生丰富多样的天然产物或次生代谢物,这些产物对于植物与其他生物之间的交流具有重要意义。其中一个主要功能是保护植物免受草食动物和/或微生物病原体的侵害。一些天然产物还参与了对非生物胁迫(如 UV-B 暴露)的防御。许多次生代谢物具有有趣的生物学特性,相当一部分具有药用价值。由于在植物中生产有价值的天然产物(如抗癌药物紫杉醇、长春碱或喜树碱)是一个成本高昂的过程,因此,采用生物技术替代方法来更经济地生产这些生物碱变得越来越重要。本文综述了在重组微生物(如细菌或酵母)中生产生物碱的最新进展。在代谢工程方面已经取得了一些进展,通常采用单个重组生物碱基因。更重要的是,已经证明在重组大肠杆菌和酵母中可以生产苯并异喹啉、单萜吲哚和二萜生物碱(紫杉烷)以及一些萜类化合物和酚类化合物等复杂生物碱,这为概念验证提供了依据。从长远来看,可能有希望生成完整途径的基因盒,然后可以在生物反应器中用于生产有价值的天然产物,或用于作物的代谢工程改造以提高其对草食动物和/或微生物病原体的抗性。