Department of Biochemistry and Molecular Biology, University of British Columbia, Vancouver, British Columbia, Canada.
Michael Smith Laboratories, University of British Columbia, Vancouver, British Columbia, Canada.
Nat Chem Biol. 2023 Oct;19(10):1246-1255. doi: 10.1038/s41589-023-01405-3. Epub 2023 Aug 17.
Mucin-type O-glycosylation is a post-translational modification present at the interface between cells where it has important roles in cellular communication. However, deciphering the function of O-glycoproteins and O-glycans can be challenging, especially as few enzymes are available for their assembly or selective degradation. Here, to address this deficiency, we developed a genetically encoded screening methodology for the discovery and engineering of the diverse classes of enzymes that act on O-glycoproteins. The method uses Escherichia coli that have been engineered to produce an O-glycosylated fluorescence resonance energy transfer probe that can be used to screen for O-glycopeptidase activity. Subsequent cleavage of the substrate by O-glycopeptidases provides a read-out of the glycosylation state of the probe, allowing the method to also be used to assay glycosidases and glycosyltransferases. We further show the potential of this methodology in the first ultrahigh-throughput-directed evolution of an O-glycopeptidase.
粘蛋白型 O-糖基化是一种翻译后修饰,存在于细胞之间的界面,在细胞通讯中具有重要作用。然而,破译 O-糖蛋白和 O-聚糖的功能具有挑战性,特别是因为用于其组装或选择性降解的酶很少。在这里,为了解决这一不足,我们开发了一种遗传编码的筛选方法,用于发现和工程作用于 O-糖蛋白的各种酶类。该方法使用已被工程化的大肠杆菌来产生一种 O-糖基化的荧光共振能量转移探针,可用于筛选 O-糖肽酶活性。随后 O-糖肽酶对底物的切割提供了探针糖基化状态的读出,从而使该方法也可用于测定糖苷酶和糖基转移酶。我们还进一步展示了该方法在首次针对 O-糖肽酶的超高通量定向进化中的潜力。