Roepke Jonathon, Bozzo Gale G
Department of Plant Agriculture, University of Guelph, Guelph N1G 2W1, Canada.
Department of Plant Agriculture, University of Guelph, Guelph N1G 2W1, Canada.
Phytochemistry. 2015 Jan;109:14-24. doi: 10.1016/j.phytochem.2014.10.028. Epub 2014 Nov 12.
Kaempferol and quercetin 3-O-β-glucoside-7-O-α-rhamnoside (K3G7R and Q3G7R, respectively) are major flavonol bisglycosides accumulating in Arabidopsis thaliana with synergistic abiotic stresses (i.e., nitrogen deficiency and low temperature, NDLT). However, these molecules disappear rapidly during recovery from NDLT. Typically, catabolism of related chemicals relies on β-glucosidase (BGLU) action. Evidence for flavonol 3-O-β-glucoside-7-O-α-rhamnoside BGLU activity is provided here. Major losses of Q3G7R and K3G7R coincided with an approximate 250% induction in flavonol 3-O-β-glucoside-7-O-α-rhamnoside BGLU activity within 2days of NDLT recovery relative to plants cultured under nitrogen sufficiency and high temperature (NSHT, control). QTOF-MS/MS established the product of Q3G7R hydrolysis in the presence of Arabidopsis cell free extracts was quercetin 7-O-α-rhamnoside. A phylogenetic analysis of the Arabidopsis glycoside hydrolase family 1 identified BGLU15 (At2g44450) and five other members that cluster with Fabaceae hydrolases known to attack isoflavones and isoflavonoids, which are structurally somewhat related to flavonol 3-O-β-glucoside-7-O-α-rhamnosides. Real time quantitative PCR analysis established a 300% higher expression of BGLU15 within 1day of the recovery from NDLT relative to control plants; lower or negligible changes in expression were evident for the remaining BGLUs. Recombinant thioredoxin-His6-tagged mature BGLU15 protein was expressed in Escherichia coli and purified to homogeneity. A comparison of a wide spectrum of β-glucosides showed that recombinant BGLU15 preferentially hydrolyses the 3-O-β-glucosides of flavonols, but does not attack quercetin 3-O-α-rhamnoside, quercetin 3-O-β-galactoside and rutin. BGLU15 displayed the highest catalytic efficiency for Q3G7R and K3G7R yielding their respective 7-O-rhamnosides as products; flavonol 3-O-glucosides were also attacked, albeit with lower efficiency. Together, it appears the loss of flavonol 3-O-β-glucoside-7-O-α-rhamnosides in Arabidopsis is dependent upon the enzyme-mediated cleavage of the 3-O-β linked glucose moiety.
山奈酚和槲皮素3 - O - β - 葡萄糖苷 - 7 - O - α - 鼠李糖苷(分别为K3G7R和Q3G7R)是拟南芥中在协同非生物胁迫(即氮缺乏和低温,NDLT)下积累的主要黄酮醇双糖苷。然而,这些分子在从NDLT恢复过程中迅速消失。通常,相关化学物质的分解代谢依赖于β - 葡萄糖苷酶(BGLU)的作用。本文提供了黄酮醇3 - O - β - 葡萄糖苷 - 7 - O - α - 鼠李糖苷BGLU活性的证据。相对于在氮充足和高温(NSHT,对照)条件下培养的植物,在NDLT恢复的2天内,Q3G7R和K3G7R的大量损失与黄酮醇3 - O - β - 葡萄糖苷 - 7 - O - α - 鼠李糖苷BGLU活性约250%的诱导同时发生。QTOF - MS/MS确定在拟南芥无细胞提取物存在下Q3G7R水解的产物是槲皮素7 - O - α - 鼠李糖苷。对拟南芥糖苷水解酶家族1的系统发育分析鉴定出BGLU15(At2g44450)和其他五个成员,它们与已知攻击异黄酮和异黄酮类化合物的豆科水解酶聚集在一起,这些化合物在结构上与黄酮醇3 - O - β - 葡萄糖苷 - 7 - O - α - 鼠李糖苷有些相关。实时定量PCR分析确定,相对于对照植物,在从NDLT恢复的1天内BGLU15的表达增加了300%;其余BGLU的表达变化较低或可忽略不计。重组硫氧还蛋白 - His6标签的成熟BGLU15蛋白在大肠杆菌中表达并纯化至同质。对多种β - 葡萄糖苷的比较表明,重组BGLU15优先水解黄酮醇的3 - O - β - 葡萄糖苷,但不攻击槲皮素3 - O - α - 鼠李糖苷、槲皮素3 - O - β - 半乳糖苷和芦丁。BGLU15对Q3G7R和K3G7R表现出最高的催化效率,产生各自的7 - O - 鼠李糖苷作为产物;黄酮醇3 - O - 葡萄糖苷也会被攻击,尽管效率较低。总之,拟南芥中黄酮醇3 - O - β - 葡萄糖苷 - 7 - O - α - 鼠李糖苷的损失似乎取决于酶介导的3 - O - β连接的葡萄糖部分的裂解。