Kamsteeg J, van Brederode J, van Nigtevecht G
Biochem Genet. 1978 Dec;16(11-12):1045-58. doi: 10.1007/BF00484525.
An enzyme catalyzing the transfer of the glucosyl moiety of UDP-glucose to the 3-hydroxyl group of cyanidin has been demonstrated in petal extracts of Silene dioica mutants with cyanidin-3-O-glucoside in the petals. This transferase activity was also present in young rosette leaves and calyces of these plants. The highest glucosyltransferase activity was found in petals of opening flowers of young plants. The enzyme was purified ninetyfold by PVP and Sephadex chromatography. The glucosyltransferase had a pH optimum of 7.5, had a "true Km value" of 4.1 x 10(-4) M for UDP-glucose and 0.4 x 10(-4) M for cyanidin chloride, and was not stimulated by divalent metal ions. Both p-chloromercuribenzoate and HgCl2 inhibited the enzyme activity. Pelargonidin chloride and delphinidin chloride at reduced rates also served as substrates. The enzyme did not catalyze the glucosylation of the 3-hydroxyl group of flavonols or the 5-hydroxyl group of anthocyanins. ADP-glucose could not serve as a glucosyl donor. The results of Sephadex G150 chromatography suggest that the glucosyltransferase can exist as dimer of about 125,000 daltons and as active monomers of 60,000 daltons. The genetic control of the glucosyltransferase activity is discussed.
在花瓣中含有花青素-3-O-葡萄糖苷的二色补血草突变体的花瓣提取物中,已证实有一种酶可催化将UDP-葡萄糖的葡萄糖基部分转移到花青素的3-羟基上。这种转移酶活性也存在于这些植物的幼莲座叶和花萼中。在幼嫩植株开放花朵的花瓣中发现了最高的葡萄糖基转移酶活性。通过聚乙烯吡咯烷酮(PVP)和葡聚糖凝胶色谱法将该酶纯化了90倍。该葡萄糖基转移酶的最适pH为7.5,对UDP-葡萄糖的“真实Km值”为4.1×10⁻⁴M,对氯化花青素的“真实Km值”为0.4×10⁻⁴M,并且不受二价金属离子的刺激。对氯汞苯甲酸和氯化汞均抑制该酶的活性。氯化天竺葵素和氯化飞燕草素也能以较低的速率作为底物。该酶不催化黄酮醇3-羟基或花青素5-羟基的糖基化反应。ADP-葡萄糖不能作为葡萄糖基供体。葡聚糖凝胶G150色谱分析结果表明,该葡萄糖基转移酶可以以约125,000道尔顿的二聚体形式存在,也可以以60,000道尔顿的活性单体形式存在。文中还讨论了葡萄糖基转移酶活性的遗传控制。