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糖原脱支酶中 4-α-葡聚糖转移酶的必需糊精结构作为供体底物。

Essential dextrin structure as donor substrate for 4-α-glucanotransferase in glycogen debranching enzyme.

机构信息

Department of Chemistry, Graduate School of Science, Osaka Prefecture University, Gakuen-cho 1-1, Naka-ku, Sakai, Osaka 599-8531, Japan.

Department of Chemistry, Graduate School of Science, Osaka Metropolitan University, Gakuen-cho 1-1, Naka-ku, Sakai, Osaka 599-8531, Japan.

出版信息

J Biochem. 2024 Jul 31;176(2):109-117. doi: 10.1093/jb/mvae030.

Abstract

Glycogen debranching enzyme is a single polypeptide with distinct catalytic sites for 4-α-glucanotransferase and amylo-α-1,6-glucosidase. To allow phosphorylase to degrade the inner tiers of highly branched glycogen, 4-α-glucanotransferase converts the phosphorylase-limit biantennary branch G-G-G-G-(G-G-G-G↔)G-G- (G: d-glucose, hyphens: α-1,4-linkages; double-headed arrow: α-1,6-linkage) into the G-G-G-G-(G↔)G-G- residue, which is then subjected to amylo-α-1,6-glucosidase to release the remaining G↔ residue. However, while the essential side-chain structure of the 4-α-glucanotransferase donor substrate has been determined to be the G-G-G-G↔ residue (Watanabe, Y., et al. (2008) J. Biochem.143, 435-440), its essential main-chain structure remains to be investigated. In this study, we probed the 4-α-glucanotransferase donor-binding region using novel fluorogenic dextrins Gm-(G4↔)G-Gn-F (F: 1-deoxy-1-[(2-pyridyl)amino]-d-glucitol) and maltohexaose (G6) as the donor and acceptor substrates, respectively. 4-α-Glucanotransferase exhibited maximum activity towards G4-(G4↔)G-F and G4-(G4↔)G-G-F, indicating that recognition of the G4-(G4↔)G-moiety was essential for full enzyme function. Notably, when the 4-α-glucanotransferase activity towards G4-(G4↔)G-G-F was taken as unity, those towards nonbranching dextrins were < 0.001. This indicated that the disproportionation activities towards maltooligosaccharides (Gm) are abnormal behaviours of 4-α-glucanotransferase. Notably, however, these activities have been traditionally measured to identify the 4-α-glucanotransferase mutations causing glycogen storage disease type III. This study provides a basis for more accurate identification.

摘要

糖原分支酶是一种具有独特的 4-α-葡聚糖转移酶和淀粉α-1,6-葡萄糖苷酶催化位点的单一多肽。为了使磷酸化酶能够降解高度分支糖原的内层,4-α-葡聚糖转移酶将磷酸化酶限制的双触角分支 G-G-G-G-(G-G-G-G↔)G-G-(G:d-葡萄糖,连字符:α-1,4-键;双头箭头:α-1,6-键)转化为 G-G-G-G-(G↔)G-G-残基,然后由淀粉α-1,6-葡萄糖苷酶释放剩余的 G↔残基。然而,虽然已经确定 4-α-葡聚糖转移酶供体底物的必需侧链结构为 G-G-G-G↔残基(Watanabe,Y.,等人。(2008)J. Biochem.143,435-440),但其必需的主链结构仍有待研究。在这项研究中,我们使用新型荧光衍生化糊精 Gm-(G4↔)G-Gn-F(F:1-脱氧-1-[(2-吡啶基)氨基]-d-葡萄糖醇)和麦芽六糖(G6)作为供体和受体底物来探测 4-α-葡聚糖转移酶的供体结合区域。4-α-葡聚糖转移酶对 G4-(G4↔)G-F 和 G4-(G4↔)G-G-F 表现出最大的活性,表明对 G4-(G4↔)G 部分的识别对于酶的完全功能是必需的。值得注意的是,当 4-α-葡聚糖转移酶对 G4-(G4↔)G-G-F 的活性被视为 1 时,对非分支糊精的活性则<0.001。这表明 4-α-葡聚糖转移酶对麦芽寡糖(Gm)的不均分活性是异常的。然而,值得注意的是,这些活性传统上被用于鉴定导致糖原贮积病 III 型的 4-α-葡聚糖转移酶突变。本研究为更准确的鉴定提供了依据。

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