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Combining multi-scale modelling methods to decipher molecular motions of a branching sucrase from glycoside-hydrolase family 70

机译:结合多尺度建模方法来解密糖苷水解酶家族70中支链蔗糖酶的分子运动

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摘要

Among α-transglucosylases from Glycoside-Hydrolase family 70, the ΔN123-GB-CD2 enzyme derived from the bifunctional DSR-E from L. citreum NRRL B-1299 is particularly interesting as it was the first described engineered Branching Sucrase, not able to elongate glucan polymers from sucrose substrate. The previously reported overall structural organization of this multi-domain enzyme is an intricate U-shape fold conserved among GH70 enzymes which showed a certain conformational variability of the so-called domain V, assumed to play a role in the control of product structures, in available X-ray structures. Understanding the role of functional dynamics on enzyme reaction and substrate recognition is of utmost interest although it remains a challenge for biophysical methods. By combining long molecular dynamics simulation (1μs) and multiple analyses (NMA, PCA, Morelet Continuous Wavelet Transform and Cross Correlations Dynamics), we investigated here the dynamics of ΔN123-GB-CD2 alone and in interaction with sucrose substrate. Overall, our results provide the detailed picture at atomic level of the hierarchy of motions occurring along different timescales and how they are correlated, in agreement with experimental structural data. In particular, detailed analysis of the different structural domains revealed cooperative dynamic behaviors such as twisting, bending and wobbling through anti- and correlated motions, and also two structural hinge regions, of which one was unreported. Several highly flexible loops surrounding the catalytic pocket were also highlighted, suggesting a potential role in the acceptor promiscuity of ΔN123-GBD-CD2. Normal modes and essential dynamics underlined an interesting two-fold dynamic of the catalytic domain A, pivoting about an axis splitting the catalytic gorge in two parts. The comparison of the conformational free energy landscapes using principal component analysis of the enzyme in absence or in presence of sucrose, also revealed a more harmonic basin when sucrose is bound with a shift population of the bending mode, consistent with the substrate binding event.
机译:在来自糖苷-水合酶家族70的α-转葡糖基酶中,源自柠檬酸乳杆菌NRRL B-1299的双功能DSR-E的ΔN123-GB-CD2酶特别有趣,因为它是第一个描述的工程化分支蔗糖酶,不能延长来自蔗糖底物的葡聚糖聚合物。先前报道的这种多结构域酶的整体结构组织是GH70酶之间保守的U型折叠,显示了所谓的结构域V的一定构象变异性,假定它在控制产品结构中起着重要的作用。可用的X射线结构。尽管仍然对生物物理方法构成挑战,但了解功能动力学对酶反应和底物识别的作用却是极为重要的。通过结合长分子动力学模拟(1μs)和多种分析(NMA,PCA,Morelet连续小波变换和互相关动力学),我们在这里研究了ΔN123-GB-CD2单独以及与蔗糖底物相互作用的动力学。总的来说,我们的结果提供了在原子水平上沿着不同时标发生的运动层次的详细图片,以及它们之间的相关性,并与实验结构数据一致。特别是,对不同结构域的详细分析显示了协同动态行为,例如通过反运动和相关运动进行的扭曲,弯曲和摆动,以及两个结构铰链区域,其中一个未报告。还强调了围绕催化袋的几个高度灵活的环,表明在ΔN123-GBD-CD2的受体混杂中可能发挥作用。正常模式和基本动力学强调了催化域A的有趣的两倍动力学,绕着一个将催化峡谷分为两部分的轴旋转。在不存在或存在蔗糖的情况下使用酶的主成分分析对构象自由能态势进行比较,还发现,当蔗糖与弯曲模式的移位种群结合时,与底物结合事件相一致,盆中的谐波更加和谐。

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