Department of Biochemistry, Iowa State University, Ames, Iowa 50011, USA.
Plant Cell. 2009 Oct;21(10):3315-25. doi: 10.1105/tpc.108.063677. Epub 2009 Oct 13.
Biosynthetic gene clusters are common in microbial organisms, but rare in plants, raising questions regarding the evolutionary forces that drive their assembly in multicellular eukaryotes. Here, we characterize the biochemical function of a rice (Oryza sativa) cytochrome P450 monooxygenase, CYP76M7, which seems to act in the production of antifungal phytocassanes and defines a second diterpenoid biosynthetic gene cluster in rice. This cluster is uniquely multifunctional, containing enzymatic genes involved in the production of two distinct sets of phytoalexins, the antifungal phytocassanes and antibacterial oryzalides/oryzadiones, with the corresponding genes being subject to distinct transcriptional regulation. The lack of uniform coregulation of the genes within this multifunctional cluster suggests that this was not a primary driving force in its assembly. However, the cluster is dedicated to specialized metabolism, as all genes in the cluster are involved in phytoalexin metabolism. We hypothesize that this dedication to specialized metabolism led to the assembly of the corresponding biosynthetic gene cluster. Consistent with this hypothesis, molecular phylogenetic comparison demonstrates that the two rice diterpenoid biosynthetic gene clusters have undergone independent elaboration to their present-day forms, indicating continued evolutionary pressure for coclustering of enzymatic genes encoding components of related biosynthetic pathways.
生物合成基因簇在微生物中很常见,但在植物中很少见,这引发了关于驱动多细胞真核生物组装这些基因簇的进化力量的问题。在这里,我们描述了一种水稻(Oryza sativa)细胞色素 P450 单加氧酶 CYP76M7 的生化功能,它似乎参与了真菌抗生物质 phytocassanes 的产生,并定义了水稻中的第二个二萜生物合成基因簇。这个簇具有独特的多功能性,包含参与产生两组不同植物抗毒素的酶基因,即抗真菌 phytocassanes 和抗细菌 oryzalides/oryzadiones,相应的基因受到不同的转录调控。这个多功能簇内基因的非统一核心调控缺乏表明这不是其组装的主要驱动力。然而,该簇专门用于特殊代谢,因为簇中的所有基因都参与植物抗毒素代谢。我们假设这种对特殊代谢的专注导致了相应生物合成基因簇的组装。与该假设一致,分子系统发育比较表明,这两个水稻二萜生物合成基因簇已经独立进化到目前的形式,表明与相关生物合成途径的酶编码成分相关的酶基因的共聚类仍在继续受到进化压力的影响。