ALKALOID BIOSYNTHESIS IN PLANTS: Biochemistry, Cell Biology, Molecular Regulation, and Metabolic Engineering Applications.

P. Facchini
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引用次数: 582

Abstract

Recent advances in the cell, developmental, and molecular biology of alkaloid biosynthesis have heightened our appreciation for the complexity and importance of plant secondary pathways. Several biosynthetic genes involved in the formation of tropane, benzylisoquinoline, and terpenoid indole alkaloids have now been isolated. The early events of signal perception, the pathways of signal transduction, and the function of gene promoters have been studied in relation to the regulation of alkaloid metabolism. Enzymes involved in alkaloid biosynthesis are associated with diverse subcellular compartments including the cytosol, vacuole, tonoplast membrane, endoplasmic reticulum, chloroplast stroma, thylakoid membranes, and perhaps unique "biosynthetic" or transport vesicles. Localization studies have shown that sequential alkaloid biosynthetic enzymes can also occur in distinct cell types, suggesting the intercellular transport of pathway intermediates. Isolated genes have also been used to genetically alter the accumulation of specific alkaloids and other plant secondary metabolites. Metabolic modifications include increased indole alkaloid levels, altered tropane alkaloid accumulation, elevated serotonin synthesis, reduced indole glucosinolate production, redirected shikimate metabolism, and increased cell wall-bound tyramine formation. This review discusses the biochemistry, cell biology, molecular regulation, and metabolic engineering of alkaloid biosynthesis in plants.
植物生物碱合成:生物化学、细胞生物学、分子调控和代谢工程应用。
生物碱生物合成的细胞、发育和分子生物学的最新进展使我们对植物次生途径的复杂性和重要性有了更高的认识。几个生物合成基因参与形成的tropane,苄基异喹啉和萜类吲哚生物碱现已被分离。对生物碱代谢调控的早期信号感知事件、信号转导途径以及基因启动子的功能进行了研究。参与生物碱生物合成的酶与不同的亚细胞区室有关,包括细胞质、液泡、细胞质膜、内质网、叶绿体基质、类囊体膜,以及可能独特的“生物合成”或运输囊泡。定位研究表明,顺序生物碱生物合成酶也可以发生在不同的细胞类型中,提示通路中间体的细胞间转运。分离的基因也被用于遗传改变特定生物碱和其他植物次生代谢物的积累。代谢改变包括吲哚生物碱水平增加、tropane生物碱积累改变、血清素合成升高、吲哚硫代葡萄糖苷生成减少、莽草酸代谢重定向和细胞壁结合酪胺形成增加。综述了植物生物碱合成的生物化学、细胞生物学、分子调控和代谢工程等方面的研究进展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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