Zhang Yazhen, Wei Kang, Guo Lingling, Lei Yuping, Cheng Hao, Chen Changsong, Wang Liyuan
Key Laboratory of Tea Biology and Resources Utilization, Ministry of Agriculture, National Center for Tea Improvement, Tea Research Institute Chinese Academy of Agricultural Sciences (TRICAAS), Hangzhou, China.
Tea Research Institute, Fujian Academy of Agricultural Sciences, Fuzhou, China.
Front Plant Sci. 2022 Dec 15;13:1033316. doi: 10.3389/fpls.2022.1033316. eCollection 2022.
Caffeine is a characteristic secondary metabolite in tea plants. It confers tea beverage with unique flavor and excitation effect on human body. The pathway of caffeine biosynthesis has been generally established, but the mechanism of caffeine transport remains unclear. Here, eight members of purine permeases (PUPs) were identified in tea plants. They had diverse expression patterns in different tissues, suggesting their broad roles in caffeine metabolism. In this study, F1 strains of "Longjing43" ♂ × "Baihaozao" ♀ and different tea cultivars were used as materials to explore the correlation between caffeine content and gene expression. The heterologous expression systems of yeast and Arabidopsis were applied to explore the function of CsPUPs. Correlation analysis showed that the expressions of CsPUP1, CsPUP3.1, and CsPUP10.1 were significantly negatively correlated with caffeine content in tea leaves of eight strains and six cultivars. Furthermore, subcellular localization revealed that the three CsPUPs were not only located in plasma membrane but also widely distributed as circular organelles in cells. Functional complementation assays in yeast showed that the three CsPUPs could partly or completely rescue the defective function of mutant in caffeine transport. Among them, transgenic yeast of CsPUP10.1 exhibited the strongest transport capacity for caffeine. Consistent phenotypes and functions were further identified in the CsPUP10.1-over-expression Arabidopsis lines. Taken together, it suggested that CsPUPs were involved in caffeine transport in tea plants. Potential roles of CsPUPs in the intracellular transport of caffeine among different subcellular organelles were proposed. This study provides a theoretical basis for further research on the PUP genes and new insights for caffeine metabolism in tea plants.
咖啡因是茶树中一种特有的次生代谢产物。它赋予茶饮料独特的风味以及对人体的兴奋作用。咖啡因生物合成途径已基本明确,但咖啡因转运机制仍不清楚。在此,在茶树中鉴定出8个嘌呤通透酶(PUPs)成员。它们在不同组织中具有多样的表达模式,表明其在咖啡因代谢中具有广泛作用。本研究以“龙井43”♂ד白毫早”♀的F1代株系及不同茶树品种为材料,探究咖啡因含量与基因表达之间的相关性。应用酵母和拟南芥的异源表达系统来探究CsPUPs的功能。相关性分析表明,CsPUP1、CsPUP3.1和CsPUP10.1的表达与8个株系和6个品种茶叶中的咖啡因含量显著负相关。此外,亚细胞定位显示这3个CsPUPs不仅位于质膜上,还作为环状细胞器广泛分布于细胞中。酵母中的功能互补试验表明,这3个CsPUPs能够部分或完全挽救突变体在咖啡因转运方面的缺陷功能。其中,CsPUP10.1转基因酵母对咖啡因的转运能力最强。在CsPUP10.1过表达拟南芥株系中进一步鉴定出了一致的表型和功能。综上所述,表明CsPUPs参与茶树中咖啡因的转运。提出了CsPUPs在不同亚细胞器间咖啡因细胞内转运中的潜在作用。本研究为进一步研究PUP基因提供了理论依据,并为茶树咖啡因代谢提供了新的见解。