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Computational analyses of the conformational itinerary along the reaction pathway of GH94 cellobiose phosphorylase

机译:GH94纤维二糖磷酸化酶反应路径构象行程的计算分析

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GH94 cellobiose phosphorylase (CBP) catalyzes the phosphorolysis of cellobiose into alpha-D-glucose 1-phosphate (G1P) and D-glucose with inversion of anomeric configuration. The complex crystal structure of CBP from Cellvibrio gilvus had previously been determined; glycerol, glucose, and phosphate are bound to subsites -1, +1, and the anion binding site, respectively. We performed computational analyses to elucidate the conformational itinerary along the reaction pathway of this enzyme. AUTODOCK was used to dock cellobiose with its glycon glucosyl residue in various conformations and with its aglycon glucosyl residue in the low-energy C-4(1) conformer. An oxocarbenium ion-like glucose molecule mimicking the transition state was also docked. Based on the clustering analysis, docked energies, and comparison with the crystallographic ligands, we conclude that the reaction proceeds from S-1(3) as the pre-transition state conformer (Michaelis complex) via E-3 as the transition state candidate to C-4(1) as the GIP product conformer. The predicted reaction pathway of the inverting phosphorylase is similar to that proposed for the first-half glycosylation reaction of retaining cellulases, but is different from those for inverting cellulases. NAMD was used to simulate molecular dynamics of the enzyme. The S-1(3) pre-transition state conformer is highly stable compared with other conformers, and a conformational change from C-4(1) to B-1,B-4 was observed. (c) 2008 Elsevier Ltd. All rights reserved.
机译:GH94纤维二糖磷酸化酶(CBP)催化纤维二糖磷酸化为α-D-葡萄糖1-磷酸(G1P)和D-葡萄糖,并带有异头构型。先前已经确定了来自吉氏弧菌的CBP的复杂晶体结构。甘油,葡萄糖和磷酸盐分别与亚位点-1,+ 1和阴离子结合位点结合。我们进行了计算分析,以阐明沿该酶反应路径的构象行程。 AUTODOCK用于将纤维二糖与其糖苷葡糖残基以各种构象对接,并将其糖苷配基糖苷残基在低能C-4(1)构象体中对接。还模拟了过渡态的氧碳鎓离子样葡萄糖分子。基于聚类分析,对接能以及与晶体配体的比较,我们得出结论,反应是从作为过渡态前构象体(Michaelis配合物)的S-1(3)经由E-3作为过渡态候选而进行的。 C-4(1)作为GIP产品配置程序。反向磷酸化酶的预测反应途径与针对保留纤维素酶的上半糖基化反应所提议的途径相似,但是与针对反向纤维素酶的途径不同。 NAMD用于模拟酶的分子动力学。与其他构象异构体相比,S-1(3)过渡态构象异构体高度稳定,并且观察到从C-4(1)到B-1,B-4的构象变化。 (c)2008 Elsevier Ltd.保留所有权利。

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