Li Zhi-Xin, Yang Wei-Jun, Ahammed Golam Jalal, Shen Chen, Yan Peng, Li Xin, Han Wen-Yan
Key Laboratory of Tea Biology and Resources Utilization, Ministry of Agriculture, Tea Research Institute, Chinese Academy of Agricultural Sciences, 9 Meiling Road, Hangzhou, 310008, PR China; Graduate School of Chinese Academy of Agricultural Sciences, Beijing, PR China.
School of Biotechnology and Food Science, Anyang Institute of Technology, Anyang, 455000, PR China.
Plant Physiol Biochem. 2016 Sep;106:327-35. doi: 10.1016/j.plaphy.2016.06.027. Epub 2016 Jun 21.
Leaf position represents a specific developmental stage that influences both photosynthesis and respiration. However, the precise relationships between photosynthesis and respiration in different leaf position that affect tea quality are largely unknown. Here, we show that the effective quantum yield of photosystem II [ΦPSⅡ] as well as total chlorophyll concentration (TChl) of tea leaves increased gradually with leaf maturity. Moreover, respiration rate (RR) together with total nitrogen concentration (TN) decreased persistently, but total carbon remained unchanged during leaf maturation. Analyses of major N-based organic compounds revealed that decrease in TN was attributed to a significant decrease in the concentration of caffeine and amino acids (AA) in mature leaves. Furthermore, soluble sugar (SS) decreased, but starch concentration increased with leaf maturity, indicating that source-sink relationship was altered during tea leaf development. Detailed correlation analysis showed that ΦPSⅡ was negatively correlated with RR, SS, starch, tea polyphenol (TP), total catechins and TN, but positively correlated with TChl; while RR was positively correlated with TN, SS, TP and caffeine, but negatively correlated with TChl and starch concentrations. Our results suggest that biosynthesis of chlorophyll, catechins and polyphenols is closely associated with photosynthesis and respiration in different leaf position that greatly influences the relationship between primary and secondary metabolism in tea plants.
叶片位置代表一个特定的发育阶段,它会影响光合作用和呼吸作用。然而,不同叶片位置的光合作用与呼吸作用之间精确的关系(这种关系会影响茶叶品质)在很大程度上尚不清楚。在此,我们表明,茶树叶片的光系统II有效量子产率[ΦPSⅡ]以及总叶绿素浓度(TChl)随叶片成熟度逐渐增加。此外,在叶片成熟过程中,呼吸速率(RR)和总氮浓度(TN)持续下降,但总碳含量保持不变。对主要含氮有机化合物的分析表明,TN的降低归因于成熟叶片中咖啡因和氨基酸(AA)浓度的显著下降。此外,可溶性糖(SS)下降,但淀粉浓度随叶片成熟度增加,这表明在茶树叶片发育过程中源库关系发生了改变。详细的相关性分析表明,ΦPSⅡ与RR、SS、淀粉、茶多酚(TP)、总儿茶素和TN呈负相关,但与TChl呈正相关;而RR与TN、SS、TP和咖啡因呈正相关,但与TChl和淀粉浓度呈负相关。我们的结果表明,叶绿素、儿茶素和多酚的生物合成与不同叶片位置的光合作用和呼吸作用密切相关,这极大地影响了茶树中初级和次级代谢之间的关系。