Linderstrøm-Lang Centre for Protein Science, Section for Biomolecular Sciences, Department of Biology, University of Copenhagen, Ole Maaløes Vej 5, DK-2200, Copenhagen, Denmark.
Linderstrøm-Lang Centre for Protein Science, Section for Biomolecular Sciences, Department of Biology, University of Copenhagen, Ole Maaløes Vej 5, DK-2200, Copenhagen, Denmark.
Carbohydr Res. 2019 Jul 1;480:54-60. doi: 10.1016/j.carres.2019.05.009. Epub 2019 May 21.
Often glycosidase assays are based on small-molecule compounds where a glycan of interest is linked to a chromophore allowing for easy detection of cleavage of the glycoside bond. However, such compounds only resemble part of the more complex substrate molecule for enzymes acting on glycoconjugates of glycopeptides or glycoproteins. Nonetheless, the advantage is obvious as enzyme activity is readily recorded and kinetic parameters easily obtained. This is not often the case with glycopeptides or glycoproteins as these may reveal increased complexity in terms of heterogeneity in protein-glycan stoichiometry and restricted enzyme accessibility. However, a kinetic analysis of glycan release from glycopeptides could provide information complementary to that of small-molecule substrates, especially if providing kinetic parameters that are immediately comparable. We have characterized the steady state kinetics of wild type and mutant variants of Bifidobacterium longum endo-α-N-acetylgalactosaminidase, by recording the enzymatic release of Galβ(1-3)GalNAc from bovine glycomacropeptide pre-treated with sialidase to remove sialic acid units. Differences between previously reported kinetic constants obtained with synthetic substrates and those obtained in the present work demonstrate an influence of the peptide moiety on the kinetic properties of endo-α-N-acetylgalactosaminidase. The devised assay and data handling method determines the accessible substrate concentration as well as the steady state kinetic parameters, K and k, for glycoconjugates of glycopeptides described by the same units as obtained from using small-molecule substrates and thus allows for a direct comparison.
通常,糖苷酶测定法基于小分子化合物,其中感兴趣的聚糖与发色团相连,从而可以轻松检测糖苷键的裂解。然而,此类化合物仅类似于作用于糖肽或糖蛋白糖缀合物的酶的更复杂底物分子的一部分。尽管如此,其优势是显而易见的,因为可以轻松记录酶活性并获得动力学参数。对于糖肽或糖蛋白而言,情况并非如此,因为它们在蛋白质-聚糖计量比的异质性和受限制的酶可及性方面可能显示出增加的复杂性。然而,糖肽释放的动力学分析可以提供与小分子底物互补的信息,特别是如果提供可立即比较的动力学参数。我们通过记录唾液酸酶预处理的牛糖巨肽中 Galβ(1-3)GalNAc 的酶促释放,来表征双歧杆菌长双歧杆菌内-α-N-乙酰半乳糖胺酶的野生型和突变变体的稳态动力学。与使用合成底物获得的先前报道的动力学常数之间的差异表明肽部分对内-α-N-乙酰半乳糖胺酶的动力学特性有影响。设计的测定法和数据处理方法确定了可及的底物浓度以及糖肽糖缀合物的稳态动力学参数 K 和 k,其单位与使用小分子底物获得的单位相同,因此可以进行直接比较。