Roepke Jonathon, Gordon Harley O W, Neil Kevin J A, Gidda Satinder, Mullen Robert T, Freixas Coutin José A, Bray-Stone Delaney, Bozzo Gale G
Department of Plant Agriculture, University of Guelph, Guelph, Ontario, Canada.
MicroSintesis Inc., Regis and Joan Duffy Research Centre, Charlottetown, Prince Edward Island, Canada.
Plant Cell Physiol. 2017 Jun 1;58(6):1030-1047. doi: 10.1093/pcp/pcx050.
Flavonol bisglycosides accumulate in plant vegetative tissues in response to abiotic stress, including simultaneous environmental perturbations (i.e. nitrogen deficiency and low temperature, NDLT), but disappear with recovery from NDLT. Previously, we determined that a recombinant Arabidopsis β-glucosidase (BGLU), BGLU15, hydrolyzes flavonol 3-O-β-glucoside-7-O-α-rhamnosides and flavonol 3-O-β-glucosides, forming flavonol 7-O-α-rhamnosides and flavonol aglycones, respectively. In this study, the transient expression of a BGLU15-Cherry fusion protein in onion epidermal cells demonstrated that BGLU15 was localized to the apoplast. Analysis of BGLU15 T-DNA insertional inactivation lines (bglu15-1 and bglu15-2) revealed negligible levels of BGLU15 transcripts, whereas its paralogs BGLU12 and BGLU16 were expressed in wild-type and bglu15 plants. The recombinant BGLU16 did not hydrolyze quercetin 3-O-β-glucoside-7-O-α-rhamnoside or rhamnosylated flavonols, but was active with the synthetic substrate, p-nitrophenyl-β-d-glucoside. In addition, shoots of both bglu15 mutants contained negligible flavonol 3-O-β-glucoside-7-O-α-rhamnoside hydrolase activity, whereas this activity increased by 223% within 2 d of NDLT recovery in wild-type plants. The levels of flavonol 3-O-β-glucoside-7-O-α-rhamnosides and quercetin 3-O-β-glucoside were high and relatively unchanged in shoots of bglu15 mutants during recovery from NDLT, whereas rapid losses were apparent in wild-type shoots. Moreover, losses of two flavonol 3-O-β-neohesperidoside-7-O-α-rhamnosides and kaempferol 3-O-α-rhamnoside-7-O-α-rhamnoside were evident during recovery from NDLT, regardless of whether BGLU15 was present. A spike in a kaempferol 7-O-α-rhamnoside occurred with stress recovery, regardless of germplasm, suggesting a contribution from hydrolysis of kaempferol 3-O-β-neohesperidoside-7-O-α-rhamnosides and/or kaempferol 3-O-α-rhamnoside-7-O-α-rhamnoside by hitherto unknown mechanisms. Thus, BGLU15 is essential for catabolism of flavonol 3-O-β-glucoside-7-O-α-rhamnosides and flavonol 3-O-β-glucosides in Arabidopsis.
黄酮醇双糖苷会在植物营养组织中积累,以响应非生物胁迫,包括同时发生的环境扰动(即氮缺乏和低温,NDLT),但在从NDLT恢复后会消失。此前,我们确定重组拟南芥β-葡萄糖苷酶(BGLU)BGLU15可水解黄酮醇3-O-β-葡萄糖苷-7-O-α-鼠李糖苷和黄酮醇3-O-β-葡萄糖苷,分别形成黄酮醇7-O-α-鼠李糖苷和黄酮醇苷元。在本研究中,BGLU15-Cherry融合蛋白在洋葱表皮细胞中的瞬时表达表明BGLU15定位于质外体。对BGLU15 T-DNA插入失活系(bglu15-1和bglu15-2)的分析显示BGLU15转录本水平可忽略不计,而其旁系同源物BGLU12和BGLU16在野生型和bglu15植物中均有表达。重组BGLU16不水解槲皮素3-O-β-葡萄糖苷-7-O-α-鼠李糖苷或鼠李糖基化黄酮醇,但对合成底物对硝基苯基-β-D-葡萄糖苷有活性。此外,两个bglu15突变体的茎中黄酮醇3-O-β-葡萄糖苷-7-O-α-鼠李糖苷水解酶活性可忽略不计,而在野生型植物从NDLT恢复的2天内,该活性增加了223%。在从NDLT恢复期间,bglu15突变体茎中黄酮醇3-O-β-葡萄糖苷-7-O-α-鼠李糖苷和槲皮素3-O-β-葡萄糖苷的水平较高且相对不变,而野生型茎中则明显快速减少。此外,在从NDLT恢复期间,两种黄酮醇3-O-β-新橙皮糖苷-7-O-α-鼠李糖苷和山奈酚3-O-α-鼠李糖苷-7-O-α-鼠李糖苷的减少很明显,无论是否存在BGLU15。无论种质如何,在胁迫恢复时山奈酚7-O-α-鼠李糖苷都会出现峰值,这表明山奈酚3-O-β-新橙皮糖苷-7-O-α-鼠李糖苷和/或山奈酚3-O-α-鼠李糖苷-7-O-α-鼠李糖苷通过迄今未知的机制水解产生了影响。因此,BGLU15对于拟南芥中黄酮醇3-O-β-葡萄糖苷-7-O-α-鼠李糖苷和黄酮醇3-O-β-葡萄糖苷的分解代谢至关重要。