Yunnan Academy of Tobacco Science, Kunming, 650106, PR China.
Tobacco Research Institute, Chinese Academy of Agricultural Sciences, Qingdao, 266100, PR China; Graduate School of Chinese Academy of Agricultural Sciences, Beijing, 100081, PR China.
Biochem Biophys Res Commun. 2024 Dec 20;739:150550. doi: 10.1016/j.bbrc.2024.150550. Epub 2024 Aug 14.
In plants, cytochrome P450s are monooxygenase that play key roles in the synthesis and degradation of intracellular substances. In tobacco, the majority of studies examining the P450 superfamily have concentrated on the CYP82E subfamily, where multiple family members function as demethylases, facilitating the synthesis of nornicotine. In this study, NtCYP82C4, a tobacco P450 superfamily member, was identified from a gene-edited tobacco mutant that nicotine biosynthesis in tobacco leaves is evidently reduced. Compared to the wild-type plants, the knockout of NtCYP82C4 resulted in a significantly lower nicotine content and biomass in tobacco leaves. Transcriptome and metabolome analyses indicated that the knockout of NtCYP82C4 inhibites secondary metabolic processes in tobacco plants, leading to the accumulation of some important precursors in the nicotine synthesis process, including aspartic acid and nicotinic acid, and increases nitrogen partitioning associated with those processes such as amino acid synthesis and utilization. It is speculated that NtCYP82C4 may function as an important catalase downstream of the nicotine synthesis. Currently, most of the steps and enzymes involved in the nicotine biosynthesis process in tobacco have been elucidated. Here, our study deepens the current understanding of nicotine biosynthesis process and provides new enzyme targets for nicotine synthesis in tobacco plants.
在植物中,细胞色素 P450 是单加氧酶,在细胞内物质的合成和降解中发挥关键作用。在烟草中,大多数研究细胞色素 P450 超家族的研究都集中在 CYP82E 亚家族,其中多个家族成员作为去甲基酶,促进诺比汀的合成。在这项研究中,从一个基因编辑的烟草突变体中鉴定出烟草 P450 超家族成员 NtCYP82C4,该突变体中烟草叶片中的尼古丁生物合成明显减少。与野生型植物相比,NtCYP82C4 的敲除导致烟草叶片中的尼古丁含量和生物量显著降低。转录组和代谢组分析表明,NtCYP82C4 的敲除抑制了烟草植物的次生代谢过程,导致尼古丁合成过程中的一些重要前体如天冬氨酸和烟酸的积累,并增加了与这些过程相关的氮分配,如氨基酸的合成和利用。据推测,NtCYP82C4 可能作为尼古丁合成的一个重要的下游加氧酶。目前,烟草中尼古丁生物合成过程中的大多数步骤和酶都已经阐明。在这里,我们的研究加深了对尼古丁生物合成过程的认识,并为烟草中尼古丁的合成提供了新的酶靶标。