Yuan Pan, Yu Mingzhu, Liu Haijiang, Hammond John P, Cai Hongmei, Ding Guangda, Wang Sheliang, Xu Fangsen, Wang Chuang, Hong Dengfeng, Shi Lei
National Key Laboratory of Crop Genetic Improvement, Huazhong Agricultural University, Wuhan, 430070, Hubei, China.
Microelement Research Centre, Key Laboratory of Arable Land Conservation (Middle and Lower Reaches of Yangtze River), Ministry of Agriculture and Rural Affairs, Huazhong Agricultural University, Wuhan, 430070, Hubei, China.
Planta. 2024 Apr 15;259(5):122. doi: 10.1007/s00425-024-04404-3.
Overexpression of BnaC02.TPS8 increased low N and high sucrose-induced anthocyanin accumulation. Anthocyanin plays a crucial role in safeguarding photosynthetic tissues against high light, UV radiation, and oxidative stress. Their accumulation is triggered by low nitrogen (N) stress and elevated sucrose levels in Arabidopsis. Trehalose-6-phosphate (T6P) serves as a pivotal signaling molecule, sensing sucrose availability, and carbon (C) metabolism. However, the mechanisms governing the regulation of T6P synthase (TPS) genes responsible for anthocyanin accumulation under conditions of low N and high sucrose remain elusive. In a previous study, we demonstrated the positive impact of a cytoplasm-localized class II TPS protein 'BnaC02.TPS8' on photosynthesis and seed yield improvement in Brassica napus. The present research delves into the biological role of BnaC02.TPS8 in response to low N and high sucrose. Ectopic overexpression of BnaC02.TPS8 in Arabidopsis seedlings resulted in elevated shoot T6P levels under N-sufficient conditions, as well as an increased carbon-to-nitrogen (C/N) ratio, sucrose accumulation, and starch storage under low N conditions. Overexpression of BnaC02.TPS8 in Arabidopsis heightened sensitivity to low N stress and high sucrose levels, accompanied by increased anthocyanin accumulation and upregulation of genes involved in flavonoid biosynthesis and regulation. Metabolic profiling revealed increased levels of intermediate products of carbon metabolism, as well as anthocyanin and flavonoid derivatives in BnaC02.TPS8-overexpressing Arabidopsis plants under low N conditions. Furthermore, yeast two-hybrid (Y2H) and bimolecular fluorescence complementation (BiFC) analyses demonstrated that BnaC02.TPS8 interacts with both BnaC08.TPS9 and BnaA01.TPS10. These findings contribute to our understanding of how TPS8-mediated anthocyanin accumulation is modulated under low N and high sucrose conditions.
BnaC02.TPS8的过表达增加了低氮和高蔗糖诱导的花青素积累。花青素在保护光合组织免受强光、紫外线辐射和氧化应激方面起着关键作用。在拟南芥中,它们的积累是由低氮(N)胁迫和蔗糖水平升高触发的。海藻糖-6-磷酸(T6P)作为一种关键的信号分子,感知蔗糖的可用性和碳(C)代谢。然而,在低氮和高蔗糖条件下,负责花青素积累的T6P合酶(TPS)基因的调控机制仍然不清楚。在之前的一项研究中,我们证明了细胞质定位的II类TPS蛋白“BnaC02.TPS8”对甘蓝型油菜光合作用和种子产量提高的积极影响。本研究深入探讨了BnaC02.TPS8在响应低氮和高蔗糖时的生物学作用。在拟南芥幼苗中异位过表达BnaC02.TPS8导致在氮充足条件下地上部T6P水平升高,以及在低氮条件下碳氮比(C/N)增加、蔗糖积累和淀粉储存增加。在拟南芥中过表达BnaC02.TPS8提高了对低氮胁迫和高蔗糖水平的敏感性,伴随着花青素积累增加以及参与类黄酮生物合成和调控的基因上调。代谢谱分析显示,在低氮条件下,过表达BnaC02.TPS8的拟南芥植株中碳代谢中间产物、花青素和类黄酮衍生物的水平增加。此外,酵母双杂交(Y2H)和双分子荧光互补(BiFC)分析表明,BnaC02.TPS8与BnaC08.TPS9和BnaA01.TPS10相互作用。这些发现有助于我们理解在低氮和高蔗糖条件下TPS8介导的花青素积累是如何被调节的。