首页> 美国卫生研究院文献>The Journal of Biological Chemistry >Structural Insights into the Epimerization of β-14-Linked Oligosaccharides Catalyzed by Cellobiose 2-Epimerase the Sole Enzyme Epimerizing Non-anomeric Hydroxyl Groups of Unmodified Sugars
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Structural Insights into the Epimerization of β-14-Linked Oligosaccharides Catalyzed by Cellobiose 2-Epimerase the Sole Enzyme Epimerizing Non-anomeric Hydroxyl Groups of Unmodified Sugars

机译:纤维二糖2-表异构酶催化的β-14-连接寡糖的差向异构化的结构见解这种酶是未修饰糖的非异构羟基的唯一酶差向异构体

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摘要

Cellobiose 2-epimerase (CE) reversibly converts d-glucose residues into d-mannose residues at the reducing end of unmodified β1,4-linked oligosaccharides, including β-1,4-mannobiose, cellobiose, and lactose. CE is responsible for conversion of β1,4-mannobiose to 4-O-β-d-mannosyl-d-glucose in mannan metabolism. However, the detailed catalytic mechanism of CE is unclear due to the lack of structural data in complex with ligands. We determined the crystal structures of halothermophile Rhodothermus marinus CE (RmCE) in complex with substrates/products or intermediate analogs, and its apo form. The structures in complex with the substrates/products indicated that the residues in the β5-β6 loop as well as those in the inner six helices form the catalytic site. Trp-322 and Trp-385 interact with reducing and non-reducing end parts of these ligands, respectively, by stacking interactions. The architecture of the catalytic site also provided insights into the mechanism of reversible epimerization. His-259 abstracts the H2 proton of the d-mannose residue at the reducing end, and consistently forms the cis-enediol intermediate by facilitated depolarization of the 2-OH group mediated by hydrogen bonding interaction with His-200. His-390 subsequently donates the proton to the C2 atom of the intermediate to form a d-glucose residue. The reverse reaction is mediated by these three histidines with the inverse roles of acid/base catalysts. The conformation of cellobiitol demonstrated that the deprotonation/reprotonation step is coupled with rotation of the C2-C3 bond of the open form of the ligand. Moreover, it is postulated that His-390 is closely related to ring opening/closure by transferring a proton between the O5 and O1 atoms of the ligand.
机译:纤维二糖2-表异构酶(CE)可逆地将d-葡萄糖残基转化为未修饰的β1,4-连接的寡糖(包括β-1,4-甘露二糖,纤维二糖和乳糖)的还原端的d-甘露糖残基。 CE负责甘露聚糖代谢中β1,4-甘露二糖向4-O-β-d-甘露糖基-d-葡萄糖的转化。然而,由于缺乏与配体复合的结构数据,CE的详细催化机理尚不清楚。我们确定了与底物/产物或中间体类似物及其载脂蛋白形式复合的嗜盐嗜热菌罗氏嗜热菌CE(RmCE)的晶体结构。与底物/产物复合的结构表明,β5-β6环中的残基以及内部六个螺旋中的残基形成了催化位点。 Trp-322和Trp-385通过叠加相互作用分别与这些配体的还原和非还原末端部分相互作用。催化位点的结构还提供了可逆差向异构化机理的见解。 His-259在还原端提取d-甘露糖残基的H2质子,并通过与His-200的氢键相互作用介导的2-OH基团的促进去极化作用,始终形成顺式-烯二醇中间体。 His-390随后将质子捐献给中间体的C2原子,形成d-葡萄糖残基。逆反应由这三个组氨酸介导,其与酸/碱催化剂起反作用。纤维二糖醇的构象表明去质子化/再质子化步骤与配体开放形式的C2-C3键的旋转结合。此外,假设His-390通过在配体的O5和O1原子之间转移质子与开环/闭环密切相关。

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