Hashimoto Fumio, Tanaka Mika, Maeda Hiroko, Fukuda Shoko, Shimizu Keiichi, Sakata Yusuke
Department of Horticultural Science, Faculty of Agriculture, Kagoshima University, Japan.
Biosci Biotechnol Biochem. 2002 Aug;66(8):1652-9. doi: 10.1271/bbb.66.1652.
The changes in flower color related to sepal pigmentation of cyanic Delphinium cultivars were investigated during anthesis. The sepal hues of the purple and blue flowered varieties observed on the initial day of unfurling had changed with a decrease in hue angle three days after anthesis. In both the purple and blue cultivars, violdelphin (3) was the major component on day one of anthesis, and the chromaticity improved with increasing sepal concentrations of violdelphin (3) and cyanodelphin (4) after three days of unfurling. The flower hue was dominated by the constitution of acylated anthocyanins, and the chromaticity was ordered by the sepal concentration. The biosynthesis of cyanodelphin (4) from violdelphin (3) was postulated since an increase in the sepal concentration of cyanodelphin (4) was accompanied by a decrease in violdelphin (3). Acylation of the anthocyanins was initiated by an increase in the respective possible precursors, tulipanin (2) and violdelphin (3), to subsequently synthesize violdelphin (3) and cyanodelphin (4) during flowering.
在开花期研究了与蓝色翠雀花栽培品种萼片色素沉着相关的花色变化。在展开的第一天观察到的紫色和蓝色花朵品种的萼片色调,在开花三天后随着色调角的减小而发生了变化。在紫色和蓝色品种中,紫翠雀素(3)在开花第一天都是主要成分,展开三天后,随着萼片中紫翠雀素(3)和花青素飞燕草素(4)浓度的增加,色度得到改善。花色由酰化花青素的组成决定,色度由萼片浓度决定。由于花青素飞燕草素(4)的萼片浓度增加伴随着紫翠雀素(3)的减少,因此推测紫翠雀素(3)可生物合成花青素飞燕草素(4)。花青素的酰化是由各自可能的前体物质郁金香苷(2)和紫翠雀素(3)的增加引发的,随后在开花期间合成紫翠雀素(3)和花青素飞燕草素(4)。