School of Biological and Medical Engineering, Hefei University of Technology, 193# Tunxi Road, Hefei 230009, Anhui Province, PR China.
School of Biological and Medical Engineering, Hefei University of Technology, 193# Tunxi Road, Hefei 230009, Anhui Province, PR China.
Int J Biol Macromol. 2018 Jun;112:584-590. doi: 10.1016/j.ijbiomac.2018.02.001. Epub 2018 Feb 2.
Dextran produced by dextransucrase hold strong potential for industrial applications. The exact determinants of the linkage specificity of glucansucrase enzymes have remained largely unknown. Previous studies have investigated the relationships between structure and linkage specificity of the dextransucrase DSR from Leuconostoc mesenteroides by the site-directed mutagenesis of the catalytic pocket. The glycosidic linkage of dextran produced by mutant enzymes changed slightly by 3% to 20%. The mutagenesis dextransucrases were constructed by inserting an amino acid into a catalytic pocket to investigate the product specificities of dextransucrase thoroughly. The sequence and structural analysis of glycoside-hydrolase family 70 enzymes led to two sequences (Motif II and Motif IV) being targeted, which were inserted by saturation mutagenesis and simultaneously recombined between A552 and V553, D662, and S663. Variants with catalytic activity were screened of the library, which synthesizes high molecular weight α-glucans with different proportions of α(1-4) linkages, which ranges from 0% to 52%. Mutant sequence analysis, biochemical characterization, and molecular modeling studies revealed the mechanism of product specificities. The mutant dextransucrase, which synthesizes hyperbranched dextran, were obtained by the novel mutagenesis method. The different properties of dextran provide the foundation for subsequent studies and application.
由葡聚糖蔗糖酶产生的葡聚糖具有很强的工业应用潜力。葡聚糖蔗糖酶的键合特异性的确切决定因素在很大程度上仍然未知。先前的研究通过定点突变催化口袋研究了来自肠膜明串珠菌的 DSR 葡聚糖蔗糖酶的结构与键合特异性之间的关系。突变酶产生的葡聚糖的糖苷键略有变化,为 3%至 20%。通过将氨基酸插入催化口袋来构建突变葡聚糖蔗糖酶,以彻底研究葡聚糖蔗糖酶的产物特异性。糖苷水解酶家族 70 酶的序列和结构分析导致靶向两个序列(Motif II 和 Motif IV),通过饱和突变插入,并同时在 A552 和 V553、D662 和 S663 之间重组。对文库进行了具有催化活性的变体筛选,该文库可合成具有不同比例α(1-4)键的高分子量α-葡聚糖,范围从 0%到 52%。突变序列分析、生化特性和分子建模研究揭示了产物特异性的机制。通过新型诱变方法获得了合成超支化葡聚糖的突变葡聚糖蔗糖酶。葡聚糖的不同性质为后续的研究和应用提供了基础。