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来自大肠杆菌的GDP-岩藻糖合成酶:短链脱氢酶/还原酶家族中一个独特成员的结构,该成员在同一活性位点催化两种不同反应。

GDP-fucose synthetase from Escherichia coli: structure of a unique member of the short-chain dehydrogenase/reductase family that catalyzes two distinct reactions at the same active site.

作者信息

Somers W S, Stahl M L, Sullivan F X

机构信息

Small Molecule Drug Discovery Genetics Institute, Inc. 87 Cambridgepark Drive, Cambridge, MA 02140, USA.

出版信息

Structure. 1998 Dec 15;6(12):1601-12. doi: 10.1016/s0969-2126(98)00157-9.

Abstract

BACKGROUND

. In all species examined, GDP-fucose is synthesized from GDP-mannose in a three-step reaction catalyzed by two enzymes, GDP-mannose 4,6 dehydratase and a dual function 3, 5-epimerase-4-reductase named GDP-fucose synthetase. In this latter aspect fucose biosynthesis differs from that of other deoxy and dideoxy sugars, in which the epimerase and reductase activities are present as separate enzymes. Defects in GDP-fucose biosynthesis have been shown to affect nodulation in bacteria, stem development in plants, and are associated with the immune defect leukocyte adhesion deficiency type II in humans.

RESULTS

. We have determined the structure of GDP-fucose synthetase from Escherichia coli at 2.2 A resolution. The structure of GDP-fucose synthetase is closely related to that of UDP-galactose 4-epimerase and more distantly to other members of the short-chain dehydrogenase/reductase family. We have also determined the structures of the binary complexes of GDP-fucose synthetase with its substrate NADPH and its product NADP+. The nicotinamide cofactors bind in the syn and anti conformations, respectively.

CONCLUSIONS

. GDP-fucose synthetase binds its substrate, NADPH, in the proper orientation (syn) for transferring the 4-pro-S hydride of the nicotinamide. We have observed a single binding site in GDP-fucose synthetase for the second substrate, GDP-4-keto,6-deoxy-mannose. This implies that both the epimerization and reduction reactions occur at the same site in the enzyme. As is the case for all members of the short-chain family of dehydrogenase/reductases, GDP-fucose synthetase retains the Ser-Tyr-Lys catalytic triad. We propose that this catalytic triad functions in a mechanistically equivalent manner in both the epimerization and reduction reactions. Additionally, the X-ray structure has allowed us to identify other residues that are potentially required for substrate binding and catalysis.

摘要

背景

在所有已检测的物种中,GDP-岩藻糖由GDP-甘露糖经两步反应合成,该反应由两种酶催化,即GDP-甘露糖4,6-脱水酶和一种具有双重功能的3,5-表异构酶-4-还原酶(称为GDP-岩藻糖合成酶)。在这后一方面,岩藻糖的生物合成不同于其他脱氧和双脱氧糖,在其他脱氧和双脱氧糖中,表异构酶和还原酶活性分别由不同的酶呈现。已表明GDP-岩藻糖生物合成中的缺陷会影响细菌中的结瘤、植物中的茎发育,并且与人类免疫缺陷白细胞黏附缺陷II型相关。

结果

我们已确定大肠杆菌中GDP-岩藻糖合成酶的结构,分辨率为2.2埃。GDP-岩藻糖合成酶的结构与UDP-半乳糖4-表异构酶的结构密切相关,与短链脱氢酶/还原酶家族的其他成员关系较远。我们还确定了GDP-岩藻糖合成酶与其底物NADPH及其产物NADP +的二元复合物的结构。烟酰胺辅因子分别以顺式和反式构象结合。

结论

GDP-岩藻糖合成酶以适当的方向(顺式)结合其底物NADPH,以便转移烟酰胺的4-前-S氢化物。我们在GDP-岩藻糖合成酶中观察到第二个底物GDP-4-酮基-6-脱氧甘露糖的单个结合位点。这意味着表异构化和还原反应都在酶的同一部位发生。与短链脱氢酶/还原酶家族的所有成员一样,GDP-岩藻糖合成酶保留了Ser-Tyr-Lys催化三联体。我们提出,这个催化三联体在表异构化和还原反应中以机制上等效的方式发挥作用。此外,X射线结构使我们能够识别底物结合和催化可能需要的其他残基。

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