State Key Laboratory of Tea Plant Biology and Utilization, Anhui Agricultural University, West 130 Changjiang Road, Hefei, Anhui 230036, China.
J Agric Food Chem. 2021 Jan 13;69(1):414-427. doi: 10.1021/acs.jafc.0c06439. Epub 2020 Dec 7.
Anthocyanins are natural colorants that have attracted increasing attention because of their extensive range of antioxidant, antimutagenic, and health-promoting properties. The mechanism of anthocyanin synthesis has been studied in "Zijuan" tea, a representative anthocyanin-rich tea plant. However, the molecular basis underlying the transformation and degradation of anthocyanins is less-thoroughly understood. In this study, we compare "Zijuan" with a similar variety, "Yunkang 10", for transcriptome and metabolite analysis. In total, four glycosylated anthocyanins were identified in "Zijuan", including delphinidin-3--galactoside, cyanidin-3--galactoside, delphinidin 3--(6---coumaroyl) galactoside, and cyanidin 3--(6---coumaroyl) galactoside, and the glycosyl might determine the stable accumulation of anthocyanins. Several differentially expressed genes and transcription factors regulating the anthocyanin metabolism were identified, in which the significantly upregulated , , , , and were determined to be responsible for increasing and transforming anthocyanins. Moreover, by comparing the different positions of leaves in "Zijuan" and "Ziyan", we found that the pivotal genes regulating the biosynthesis of anthocyanins in "Zijuan" and "Ziyan" were different, and the degradation genes played different roles in the hydrolyzation of anthocyanins. These results provide further information on the molecular regulation of anthocyanin balance in tea plants.
花色苷是天然色素,因其具有广泛的抗氧化、抗突变和促进健康的特性而受到越来越多的关注。“紫娟”茶是一种富含花色苷的茶树,其花色苷合成的机制已得到研究。然而,花色苷转化和降解的分子基础还不太清楚。在这项研究中,我们比较了“紫娟”和类似品种“云抗 10 号”的转录组和代谢物分析。总共鉴定出“紫娟”中的四种糖苷花色苷,包括飞燕草素-3- -半乳糖苷、矢车菊素-3- -半乳糖苷、飞燕草素 3- -(6---咖啡酰基)半乳糖苷和矢车菊素 3- -(6---咖啡酰基)半乳糖苷,糖基可能决定花色苷的稳定积累。鉴定出几个调节花色苷代谢的差异表达基因和转录因子,其中显著上调的 、 、 、 和 被确定为增加和转化花色苷的原因。此外,通过比较“紫娟”和“紫嫣”叶片的不同位置,我们发现调节“紫娟”和“紫嫣”花色苷生物合成的关键基因不同,降解基因在花色苷水解中发挥不同的作用。这些结果为茶树花色苷平衡的分子调控提供了进一步的信息。