Biarnés Xevi, Nieto Joan, Planas Antoni, Rovira Carme
Centre especial de Recerca en Química Teòrica, Parc Científic de Barcelona, Josep Samitier 1-5, 08028 Barcelona, Spain.
J Biol Chem. 2006 Jan 20;281(3):1432-41. doi: 10.1074/jbc.M507643200. Epub 2005 Oct 31.
The structure and dynamics of the enzyme-substrate complex of Bacillus 1,3-1,4-beta-glucanase, one of the most active glycoside hydrolases, is investigated by means of Car-Parrinello molecular dynamics simulations (CPMD) combined with force field molecular dynamics (QM/MM CPMD). It is found that the substrate sugar ring located at the -1 subsite adopts a distorted 1S3 skew-boat conformation upon binding to the enzyme. With respect to the undistorted 4C1 chair conformation, the 1S3 skew-boat conformation is characterized by: (a) an increase of charge at the anomeric carbon (C1), (b) an increase of the distance between C1 and the leaving group, and (c) a decrease of the intraring O5-C1 distance. Therefore, our results clearly show that the distorted conformation resembles both structurally and electronically the transition state of the reaction in which the substrate acquires oxocarbenium ion character, and the glycosidic bond is partially broken. Together with analysis of the substrate conformational dynamics, it is concluded that the main determinants of substrate distortion have a structural origin. To fit into the binding pocket, it is necessary that the aglycon leaving group is oriented toward the beta region, and the skew-boat conformation naturally fulfills this premise. Only when the aglycon is removed from the calculation the substrate recovers the all-chair conformation, in agreement with the recent determination of the enzyme product structure. The QM/MM protocol developed here is able to predict the conformational distortion of substrate binding in glycoside hydrolases because it accounts for polarization and charge reorganization at the -1 sugar ring. It thus provides a powerful tool to model E.S complexes for which experimental information is not yet available.
通过将卡-帕里尼罗分子动力学模拟(CPMD)与力场分子动力学(QM/MM CPMD)相结合,研究了最具活性的糖苷水解酶之一——芽孢杆菌1,3 - 1,4-β-葡聚糖酶的酶-底物复合物的结构和动力学。研究发现,位于-1亚位点的底物糖环在与酶结合时采用扭曲的1S3扭船构象。相对于未扭曲的4C1椅式构象,1S3扭船构象的特征在于:(a)异头碳(C1)处电荷增加;(b)C1与离去基团之间的距离增加;(c)环内O5 - C1距离减小。因此,我们的结果清楚地表明,这种扭曲构象在结构和电子性质上都类似于底物获得氧碳鎓离子特征且糖苷键部分断裂的反应过渡态。结合对底物构象动力学的分析,得出底物扭曲的主要决定因素具有结构起源的结论。为了适配结合口袋,糖苷配基离去基团必须朝向β区域,而扭船构象自然满足这一前提。只有当从计算中去除糖苷配基时,底物才恢复全椅式构象,这与最近对酶产物结构的测定结果一致。此处开发的QM/MM方法能够预测糖苷水解酶中底物结合的构象扭曲,因为它考虑了-1糖环处的极化和电荷重组。因此,它为模拟尚无实验信息的酶-底物复合物提供了一个强大的工具。