Department of Chemistry, Irving K. Barber Faculty of Science, University of British Columbia, Kelowna, BC, Canada.
Methods Mol Biol. 2022;2505:141-164. doi: 10.1007/978-1-0716-2349-7_11.
Monoterpene indole alkaloid (MIA) constitutes a structurally diverse plant natural product group with remarkable pharmacological activities. Many MIAs have been routinely used as potent drugs for several diseases, including leukemia (vinblastine), lung cancer (camptothecin), and malaria (quinine). Nevertheless, MIAs are biosynthesized at extremely low abundance in plants and, in many cases, require additional chemical functionalizations before their therapeutic uses. As oxygenations and oxidative rearrangements are critical throughout MIAs' structural scaffolding and modifications, the discovery and engineering of oxidative enzymes play essential roles in understanding and boosting the supplies of MIAs. Recent advances in omics technologies and synthetic biology have provided unprecedented amount of biochemical data and tools, paving a wide pathway for discovering, characterizing, and engineering enzymes involved in MIA biosynthesis. Here, we discuss the latest progress in understanding the roles of oxidative enzymes in MIA metabolism and describe a bioinformatic and biochemical pipeline to identify, characterize, and make use of these plant biocatalysts.
单萜吲哚生物碱(MIA)是一类具有显著药理活性的结构多样的植物天然产物。许多 MIA 已被常规用作多种疾病的强效药物,包括白血病(长春碱)、肺癌(喜树碱)和疟疾(奎宁)。然而,MIA 在植物中以极低的丰度生物合成,并且在许多情况下,在其治疗用途之前需要进行其他化学官能化。由于氧化和氧化重排在 MIA 的结构支架和修饰中至关重要,因此氧化酶的发现和工程在理解和提高 MIA 的供应方面发挥着重要作用。组学技术和合成生物学的最新进展提供了前所未有的生化数据和工具,为发现、表征和工程参与 MIA 生物合成的酶铺平了道路。在这里,我们讨论了理解氧化酶在 MIA 代谢中的作用的最新进展,并描述了一种生物信息学和生化管道,以识别、表征和利用这些植物生物催化剂。