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Investigation of binding of UDP-Galf and UDP-3-FGalf to UDP-galactopyranose mutase by STD-NMR spectroscopy molecular dynamics and CORCEMA-ST calculations

机译:通过STD-NMR光谱分子动力学和CORCEMA-ST计算研究UDP-Galf和UDP- 3-F Galf与UDP-吡喃半乳糖突变酶的结合

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摘要

UDP-galactopyranose mutase (UGM) is the key enzyme involved in the biosynthesis of Galf. UDP-Galp and UDP-Galf are two natural substrates of UGM. A protocol that combines the use of STD-NMR spectroscopy, molecular modeling, and CORCEMA-ST calculations was applied to the investigation of the binding of UDP-Galf and its C3-fluorinated analogue to UGM from Klebsiella pneumoniae. UDP-Galf and UDP-[3-F]Galf were bound to UGM in a similar manner as UDP-Galp. The interconversions of UDP-Galf and UDP-[3-F]Galf to their galactopyranose counterparts were catalyzed by the reduced (active) UGM with different catalytic efficiencies, as observed by NMR spectroscopy. The binding affinities of UDP-Galf and UDP-[3-F]Galf were also compared with those of UDP-Galp and UDP by competition STD-NMR experiments. When UGM was in the oxidized (inactive) state, the binding affinities of UDP-Galf, UDP-Galp, and UDP-[3-F]Galf were of similar magnitudes, and were lower than that of UDP. However, when UGM was in the reduced state, UDP-Galp had higher binding affinity compared with UDP. Molecular dynamics (MD) simulations indicated that the “open” mobile loop in UGM “closes” upon binding of the substrates. Combined MD simulations and STD-NMR experiments were used to create models of UGM with UDP-Galf and UDP-[3-F]Galf as bound ligands. Calculated values of saturation-transfer effects with CORCEMA-ST (complete relaxation and conformational exchange matrix analysis of saturation transfer) were compared to the experimental STD effects, and permitted differentiation between two main conformational families of the bound ligands. Taken together, these results are used to rationalize the different rates of catalytic turnover of UDP-Galf and UDP-[3-F]Galf, and shed light on the mechanism of action of UGM.
机译:UDP-吡喃半乳糖突变酶(UGM)是Galf生物合成中涉及的关键酶。 UDP-Galp和UDP-Galf是UGM的两种天然底物。结合使用STD-NMR光谱,分子建模和CORCEMA-ST计算的协议,用于研究UDP-Galf及其C3氟化类似物与肺炎克雷伯菌的UGM的结合。 UDP-Galf和UDP- [3-F] Galf以与UDP-Galp类似的方式绑定到UGM。 NMR光谱观察到,UDP-Galf和UDP- [3-F] Galf相互转化为吡喃半乳糖的反应是由具有不同催化效率的还原的(活性)UGM催化的。通过竞争性STD-NMR实验,还比较了UDP-Galf和UDP- [3-F] Galf的结合亲和力与UDP-Galp和UDP的结合亲和力。当UGM处于氧化(非活性)状态时,UDP-Galf,UDP-Galp和UDP- [3-F] Galf的结合亲和力具有相似的大小,并且低于UDP。但是,当UGM处于还原状态时,与UDP相比,UDP-Gal p 具有更高的绑定亲和力。分子动力学(MD)模拟表明,UGM中的“开放”移动环在结合底物时“闭合”。结合MD模拟和STD-NMR实验,建立了以UDP-Gal f 和UDP- [3-F] Gal f 为结合配体的UGM模型。将使用CORCEMA-ST(饱和转移的完全弛豫和构象交换矩阵分析)的饱和转移效应的计算值与实验性STD效应进行比较,并允许区分结合配体的两个主要构象族。综上所述,这些结果用于合理化UDP-Gal f 和UDP- [3-F] Gal f 的不同催化转化率,并阐明了联合国大会的行动机制。

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