Yang Zhi-Rong, Mao Xue, Li Run-Zhi
Center for Agricultural Biotechnology, Shanxi Agricultural University, Taigu 030801, China.
Zhi Wu Sheng Li Yu Fen Zi Sheng Wu Xue Xue Bao. 2005 Feb;31(1):11-8.
Secondary metabolism plays an important role in plant life as well as the interaction between plants and environmental factors. Many secondary metabolites derived from plants have been used for the production of medicines, dyes, insecticides, food flavors, fragrances and so on. With increasingly comprehensive understanding of the plant metabolic networks, great progress has been made in the genetic improvement of plant secondary metabolic pathways through gene engineering. Strategies for the genetic engineering of plant secondary metabolism include: (1) enabling the host plant to accumulate a novel desirable compound by transformation of single/multiple enzyme gene (s) or a whole metabolic pathway; (2) decreasing target gene expression or inhibiting competitive metabolic pathway to achieve metabolic flux towards higher production of particular molecules through antisense RNA and RNA interference technologies; (3) effectively manipulating the transcription factors responsible for the metabolic regulation at multiple steps in a given pathway so as to have a great synthesis of the target bio-chemicals. Basing on author's research work on flavonoid synthesis mechanism in soybean seed and its gene engineering, recent progress in the engineering of plant secondary metabolism involved in the synthesis of anthocyanins, flavonoids, alkaloids, terpenoids, benzoic acid derivatives etc are reviewed.
次生代谢在植物生命活动以及植物与环境因子的相互作用中发挥着重要作用。许多源自植物的次生代谢产物已被用于生产药物、染料、杀虫剂、食品香料、香料等。随着对植物代谢网络的理解日益全面,通过基因工程在植物次生代谢途径的遗传改良方面取得了巨大进展。植物次生代谢基因工程的策略包括:(1)通过转化单个/多个酶基因或整个代谢途径,使宿主植物积累一种新的理想化合物;(2)通过反义RNA和RNA干扰技术降低靶基因表达或抑制竞争性代谢途径,以实现代谢流朝着特定分子的更高产量流动;(3)有效操纵负责给定途径中多个步骤代谢调控的转录因子,从而大量合成目标生物化学物质。基于作者对大豆种子中黄酮类化合物合成机制及其基因工程的研究工作,本文综述了植物次生代谢工程在花青素、黄酮类化合物、生物碱、萜类化合物、苯甲酸衍生物等合成方面的最新进展