Katholieke Universiteit Leuven, Department of Chemistry, Celestijnenlaan 200F, B-3001, Leuven, Belgium.
Inorg Chem. 2011 Dec 5;50(23):12025-33. doi: 10.1021/ic2015034. Epub 2011 Oct 31.
Hydrolysis of the dipeptides glycylserine (GlySer), leucylserine (LeuSer), histidylserine (HisSer), glycylalanine (GlyAla), and serylglycine (SerGly) was examined in oxomolybdate solutions by means of (1)H, (13)C, and (95)Mo NMR spectroscopy. In the presence of a mixture of oxomolybdates, the hydrolysis of the peptide bond in GlySer proceeded under neutral pD conditions (pD = 7.0, 60 °C) with a rate constant of k(obs) = 5.9 × 10(-6) s(-1). NMR spectra did not show evidence of the formation of paramagnetic species, excluding the possibility of Mo(VI) reduction to Mo(V), indicating that the cleavage of the peptide bond is purely hydrolytic. The pD dependence of k(obs) exhibits a bell-shaped profile, with the fastest cleavage observed at pD 7.0. Comparison of the rate profile with the concentration profile of oxomolybdate species implicated monomolybdate MoO(4)(2-) as the kinetically active complex. Kinetics experiments at pD 7.0 using a fixed amount of GlySer and increasing amounts of MoO(4)(2-) allowed for calculation of the catalytic rate constant (k(2) = 9.25 × 10(-6) s(-1)) and the formation constant for the GlySer-MoO(4)(2-) complex (K(f) = 15.25 M(-1)). The origin of the hydrolytic activity of molybdate is most likely a combination of the polarization of amide oxygen in GlySer due to the binding to molybdate, followed by the intramolecular attack of the Ser hydroxyl group.
通过(1)H、(13)C 和(95)Mo NMR 光谱法研究了二肽甘氨酰丝氨酸(GlySer)、亮氨酰丝氨酸(LeuSer)、组氨酰丝氨酸(HisSer)、甘氨酰丙氨酸(GlyAla)和丝氨酰甘氨酸(SerGly)在钼酸盐溶液中的水解。在混合钼酸盐存在下,GlySer 中肽键在中性 pD 条件(pD = 7.0,60°C)下以速率常数 k(obs) = 5.9×10(-6) s(-1)进行水解。NMR 谱没有显示出顺磁物种形成的证据,排除了 Mo(VI)还原为 Mo(V)的可能性,表明肽键的断裂纯粹是水解。k(obs)的 pD 依赖性呈钟形轮廓,在 pD 7.0 时观察到最快的断裂。将速率曲线与钼酸盐物种的浓度曲线进行比较,表明单钼酸盐 MoO(4)(2-)是动力学活性络合物。在 pD 7.0 下使用固定量的 GlySer 和增加量的 MoO(4)(2-)进行动力学实验,允许计算催化速率常数(k(2) = 9.25×10(-6) s(-1))和 GlySer-MoO(4)(2-)络合物的形成常数(K(f) = 15.25 M(-1))。钼酸盐的水解活性很可能是由于 GlySer 中酰胺氧与钼酸盐结合而导致的极化,以及随后 Ser 羟基的分子内攻击的组合。