Zhang Weiwei, Du Fang, Tian Guoting, Zhao Yongchang, Wang Hexiang, Ng Tzi Bun
Institute of Medicinal Plant Development, Chinese Academy of Medical Sciences & Peking Union Medical College, Beijing 100193, PR China.
State Key Laboratory for Agrobiotechnology and Department of Microbiology, China Agricultural University, Beijing 100193, China.
Acta Biochim Pol. 2018;65(3):383-389. doi: 10.18388/abp.2017_1535. Epub 2018 Sep 8.
An acidic α-galactosidase designated as hemp seed α-galactosidase (HSG) was purified from hemp (Cannabis sativa L.) seeds. By means of chromatographic procedures which involved chromatography on the cation-exchangers CM-cellulose and SP-Sepharose, chromatography on the anion-exchangers DEAE-cellulose and Q-Sepharose, and gel filtration on Superdex 75 using fast protein liquid chromatography, HSG was purified to electrophoretic homogeneity. Results of SDS-PAGE and gel filtration on FPLC Superdex 75 revealed that the enzyme was a monomeric protein with a molecular weight of 38 kDa. Sequences of the inner peptides of the α-galactosidase obtained by MALDI-TOF-MS showed that HSG was a novel α-galactosidase since there was a little similarity to the majority of α-galactosidases recorded in the literature. A pH of 3.0 and a temperature of 50°C were optimal for the activity of the enzyme. The activity of HSG was inhibited by the chemical modification with N-bromosuccinimide (NBS) reagent. HSG contained 16 tryptophan residues and two tryptophan residues on the surface, which were crucial to the α-galactosidase activity. The heavy metal ions Cd, Cu, Hg and Zn inhibited its activity. The K and V for the hydrolysis of pNPGal (4-nitrophenyl α-D-galactopyranoside) were respectively 0.008 mM and 68 μM min mg. HSG also catalyzed the hydrolysis of raffinose and other natural substrates. Hence the α-galactosidase possesses a tremendous potential for food and feed industries in the elimination of indigestible oligosaccharides from leguminous products.
一种名为大麻籽α-半乳糖苷酶(HSG)的酸性α-半乳糖苷酶从大麻(Cannabis sativa L.)种子中纯化得到。通过一系列色谱程序,包括在阳离子交换剂CM-纤维素和SP-琼脂糖上的色谱分离、在阴离子交换剂DEAE-纤维素和Q-琼脂糖上的色谱分离,以及使用快速蛋白质液相色谱在Superdex 75上进行凝胶过滤,HSG被纯化至电泳纯。SDS-PAGE和FPLC Superdex 75凝胶过滤结果表明,该酶是一种分子量为38 kDa的单体蛋白。通过MALDI-TOF-MS获得的α-半乳糖苷酶内部肽段序列显示,HSG是一种新型α-半乳糖苷酶,因为它与文献中记录的大多数α-半乳糖苷酶只有很少的相似性。该酶的最适pH为3.0,最适温度为50°C。HSG的活性被N-溴代琥珀酰亚胺(NBS)试剂化学修饰所抑制。HSG含有16个色氨酸残基,其中两个位于表面,这对α-半乳糖苷酶活性至关重要。重金属离子镉、铜、汞和锌抑制其活性。HSG水解对硝基苯基α-D-吡喃半乳糖苷(pNPGal)的米氏常数(Km)和最大反应速度(Vmax)分别为0.008 mM和68 μM min mg。HSG还催化棉子糖和其他天然底物的水解。因此,这种α-半乳糖苷酶在食品和饲料工业中具有巨大潜力,可用于消除豆类产品中难以消化的低聚糖。