Yu Niu, Dong Mingliang, Yang Jinchang, Li Rongsheng
State Key Laboratory of Tree Genetics and Breeding, Research Institute of Tropical Forestry, Chinese Academy of Forestry, No. 682, Guangshan Yi Road, Longdong, Guangzhou 510520, China.
Tree Physiol. 2022 Oct 7;42(10):2050-2067. doi: 10.1093/treephys/tpac052.
Plants produce specialized metabolites in various organs which serve important functions in defense and development. However, the molecular regulatory mechanisms of oleoresin production in stems from broadleaved tree species are not fully understood. To determine whether endogenous developmental cues play a role in the regulation of oleoresin biosynthesis in tree stems, anatomy, multi-omics and molecular experiments were utilized to investigate the change of secretory structures, chemical profiles and gene expression in different ontogenetic stages of Sindora glabra tree, which accumulates copious amount of sesquiterpene-rich oleoresin in stems. The size of secretory canals and the concentration of five sesquiterpenes in Sindora stems exhibited obvious increase with plant age, from 0.5- to 20-year-old plants. Moreover, α-copaene and β-copaene were found to be stem-specific sesquiterpenes. Metabolomic analysis revealed that salicylic acid highly accumulated in mature stems, but the content of triterpenes was greatly decreased. The expression of three repressors AUX/IAA, DELLA and JAZ involved in hormone signaling transduction pathways was significantly downregulated in stems of 10- and 20-year-old plants. Two key genes SgTPS3 and SgTPS5 were identified, whose expression was highly correlated with the accumulation patterns of specific sesquiterpenes and their enzymatic products were consistent with the chemical profiles in the stem. The promoters of three SgTPSs exhibiting high activity were isolated. Furthermore, we demonstrated that SgSPL15 directly interacts with SgTPS3 and SgTPS5 promoters and activates SgTPS5 expression but SgSPL15 inhibits SgTPS3 expression. In addition, SgSPL15 enhanced sesquiterpene levels by upregulating AtTPSs expression in Arabidopsis. These results suggested that sesquiterpene biosynthesis in S. glabra stem was dependent on the regulation of endogenous hormones as well as plant age, and SgSPL15 might act as a buffering factor to regulate sesquiterpene biosynthesis by targeting SgTPS genes.
植物在各个器官中产生特殊代谢产物,这些产物在防御和发育中发挥着重要作用。然而,阔叶树种茎中树脂道分泌的分子调控机制尚未完全清楚。为了确定内源性发育信号是否在树木茎中树脂道分泌的调控中发挥作用,我们利用解剖学、多组学和分子实验,研究了积累大量富含倍半萜树脂道分泌的油楠不同发育阶段的分泌结构、化学组成和基因表达的变化。油楠茎中分泌道的大小和5种倍半萜的含量随着植株年龄的增长而显著增加,从0.5年生到20年生植株。此外,α-可巴烯和β-可巴烯被发现是茎特异性倍半萜。代谢组学分析表明,水杨酸在成熟茎中高度积累,但三萜类化合物的含量大大降低。参与激素信号转导途径的3种阻遏蛋白AUX/IAA、DELLA和JAZ在10年生和20年生植株的茎中的表达显著下调。鉴定出2个关键基因SgTPS3和SgTPS5,其表达与特定倍半萜的积累模式高度相关,且其酶促产物与茎中的化学组成一致。分离出3个具有高活性的SgTPSs启动子。此外,我们证明SgSPL15直接与SgTPS3和SgTPS5启动子相互作用,激活SgTPS5的表达,但抑制SgTPS3的表达。此外,SgSPL15通过上调拟南芥中AtTPSs的表达来提高倍半萜水平。这些结果表明,油楠茎中倍半萜的生物合成依赖于内源激素和植株年龄的调控,SgSPL15可能作为一个缓冲因子,通过靶向SgTPS基因来调控倍半萜的生物合成。