Department of Chemistry, Graduate School of Science, Osaka Prefecture University, Gakuen-cho 1-1, Naka-ku, Sakai Osaka, 599-8531, Osaka, Japan.
Glycoconj J. 2020 Dec;37(6):667-679. doi: 10.1007/s10719-020-09955-7. Epub 2020 Nov 17.
Glycogen debranching enzyme (GDE), together with glycogen phosphorylase (GP), is responsible for the complete degradation of glycogen. GDE has distinct catalytic sites for 4-α-glucanotransferase and amylo-α-1,6-glucosidase. For the GDE sensitive assay, we previously developed the GP limit fluorogenic branched dextrin Glcα1-4Glcα1-4Glcα1-4Glcα1-4(Glcα1-4Glcα1-4Glcα1-4Glcα1-6)Glcα1-4Glcα1-4Glcα1-4GlcPA (B4/84, where Glc = D-glucose and GlcPA = 1-deoxy-1-[(2-pyridyl)amino]-D-glucitol). However, B4/84 is not widely available because of difficulties in its chemical synthesis and positional-isomer separation (0.33% yield by α-1,6-coupling of maltotetraose with Glc-GlcPA). In this study, we attempted to develop an efficient method for the preparation of Glcα1-4Glcα1-4Glcα1-4Glcα1-4(Glcα1-4Glcα1-4Glcα1-4Glcα1-6)Glcα1-4Glcα1-4GlcPA (B3/74), which was designed to have the minimum essential dextrin structure for GDE. First, Glcα1-6Glcα1-4Glcα1-4GlcPA (B3/31) was prepared from commercially available Glcα1-6Glcα1-4Glcα1-4Glc. Using α-cyclodextrin as a donor substrate, cyclodextrin glucanotransferase elongated both the main and side branches on B3/31, while all the glycosidic bonds in B3/31 were left intact. After exhaustive digestion with GP, B3/74 was obtained from B3/31 with 16% yield, a value that is 48-fold greater than that previously reported for B4/84. GDE 4-α-glucanotransferase exhibited high activity toward both B3/74 and B4/84. In addition, we studied the efficient conversion of B3/74 into Glcα1-4Glcα1-4Glcα1-4Glcα1-4(Glcα1-6)Glcα1-4Glcα1-4GlcPA (B3/71), which has the best dextrin structure for the GDE amylo-α-1,6-glucosidase.
糖原分支酶(GDE)与糖原磷酸化酶(GP)一起负责糖原的完全降解。GDE 具有独特的 4-α-葡聚糖转移酶和淀粉α-1,6-葡萄糖苷酶催化位点。对于 GDE 敏感测定,我们之前开发了 GP 限制荧光支化糊精 Glcα1-4Glcα1-4Glcα1-4Glcα1-4(Glcα1-4Glcα1-4Glcα1-4Glcα1-6)Glcα1-4Glcα1-4Glcα1-4GlcPA(B4/84,其中 Glc=D-葡萄糖,GlcPA=1-脱氧-1-[(2-吡啶基)氨基]-D-葡萄糖醇)。然而,由于其化学合成和位置异构体分离困难(麦芽四糖与 Glc-GlcPA 的α-1,6-偶联的产率为 0.33%),B4/84 并不广泛可用。在这项研究中,我们试图开发一种有效的方法来制备 Glcα1-4Glcα1-4Glcα1-4Glcα1-4(Glcα1-4Glcα1-4Glcα1-4Glcα1-6)Glcα1-4Glcα1-4GlcPA(B3/74),它的设计具有 GDE 的最小必需糊精结构。首先,从商业上可获得的 Glcα1-6Glcα1-4Glcα1-4Glc 制备 Glcα1-6Glcα1-4Glcα1-4GlcPA(B3/31)。使用α-环糊精作为供体底物,环糊精葡聚糖转移酶在 B3/31 的主链和侧链上都进行了延伸,而 B3/31 中的所有糖苷键都保持完整。在用 GP 进行彻底消化后,B3/74 从 B3/31 中以 16%的产率获得,这一数值比之前报道的 B4/84 高 48 倍。GDE 4-α-葡聚糖转移酶对 B3/74 和 B4/84 均表现出很高的活性。此外,我们研究了 B3/74 高效转化为 Glcα1-4Glcα1-4Glcα1-4Glcα1-4(Glcα1-6)Glcα1-4Glcα1-4GlcPA(B3/71),它具有 GDE 淀粉α-1,6-葡萄糖苷酶的最佳糊精结构。