Wang Jun, Gong An, Yang Cai-Feng, Bao Qi, Shi Xin-Yi, Han Bei-Bei, Wu Xiang-Yang, Wu Fu-An
1] School of Biotechnology, Jiangsu University of Science and Technology, Zhenjiang. 212018, P R China [2] Sericultural Research Institute, Chinese Academy of Agricultural Sciences, Zhenjiang. 212018, P R China [3] School of the Environment and Safety Engineering, Jiangsu University, Zhenjiang. 212013, P R China.
1] School of Biotechnology, Jiangsu University of Science and Technology, Zhenjiang. 212018, P R China [2] Sericultural Research Institute, Chinese Academy of Agricultural Sciences, Zhenjiang. 212018, P R China.
Sci Rep. 2015 Mar 3;5:8682. doi: 10.1038/srep08682.
Isoquercitrin is a rare, natural ingredient with several biological activities that is a key precursor for the synthesis of enzymatically modified isoquercitrin (EMIQ). The enzymatic production of isoquercitrin from rutin catalyzed by hesperidinase is feasible; however, the bioprocess is hindered by low substrate concentration and a long reaction time. Thus, a novel biphase system consisting of [Bmim][BF4]:glycine-sodium hydroxide (pH 9) (10:90, v/v) and glyceryl triacetate (1:1, v/v) was initially established for isoquercitrin production. The biotransformation product was identified using liquid chromatography-mass spectrometry, and the bonding mechanism of the enzyme and substrate was inferred using circular dichroism spectra and kinetic parameters. The highest rutin conversion of 99.5% and isoquercitrin yield of 93.9% were obtained after 3 h. The reaction route is environmentally benign and mild, and the biphase system could be reused. The substrate concentration was increased 2.6-fold, the reaction time was reduced to three tenths the original time. The three-dimensional structure of hesperidinase was changed in the biphase system, which α-helix and random content were reduced and β-sheet content was increased. Thus, the developed biphase system can effectively strengthen the hesperidinase-catalyzed synthesis of isoquercitrin with high yield.
异槲皮苷是一种具有多种生物活性的稀有天然成分,是酶促修饰异槲皮苷(EMIQ)合成的关键前体。用橙皮苷酶催化芦丁酶促生产异槲皮苷是可行的;然而,该生物过程受到底物浓度低和反应时间长的阻碍。因此,最初建立了一种由[Bmim][BF4]:甘氨酸 - 氢氧化钠(pH 9)(10:90,v/v)和三乙酸甘油酯(1:1,v/v)组成的新型双相体系用于生产异槲皮苷。使用液相色谱 - 质谱法鉴定生物转化产物,并使用圆二色光谱和动力学参数推断酶与底物的结合机制。3小时后获得了最高芦丁转化率99.5%和异槲皮苷产率93.9%。该反应路线环境友好且温和,双相体系可重复使用。底物浓度提高了2.6倍,反应时间缩短至原来的十分之三。在双相体系中橙皮苷酶的三维结构发生了变化,α - 螺旋和无规卷曲含量减少,β - 折叠含量增加。因此,所开发的双相体系可以有效地强化橙皮苷酶催化高产率合成异槲皮苷。