Department of Bio-organic Synthesis, Leiden Institute of Chemistry, Leiden University , Einsteinweg 55, 2333 CC Leiden, The Netherlands.
Department of Medical Biochemistry, Leiden Institute of Chemistry, Leiden University , Einsteinweg 55, 2333 CC Leiden, The Netherlands.
ACS Cent Sci. 2016 May 25;2(5):351-8. doi: 10.1021/acscentsci.6b00057. Epub 2016 Apr 26.
The development of small molecule activity-based probes (ABPs) is an evolving and powerful area of chemistry. There is a major need for synthetically accessible and specific ABPs to advance our understanding of enzymes in health and disease. α-Glucosidases are involved in diverse physiological processes including carbohydrate assimilation in the gastrointestinal tract, glycoprotein processing in the endoplasmic reticulum (ER), and intralysosomal glycogen catabolism. Inherited deficiency of the lysosomal acid α-glucosidase (GAA) causes the lysosomal glycogen storage disorder, Pompe disease. Here, we design a synthetic route for fluorescent and biotin-modified ABPs for in vitro and in situ monitoring of α-glucosidases. We show, through mass spectrometry, gel electrophoresis, and X-ray crystallography, that α-glucopyranose configured cyclophellitol aziridines label distinct retaining α-glucosidases including GAA and ER α-glucosidase II, and that this labeling can be tuned by pH. We illustrate a direct diagnostic application in Pompe disease patient cells, and discuss how the probes may be further exploited for diverse applications.
小分子活性探针(ABPs)的开发是化学领域一个不断发展和强大的领域。我们迫切需要具有合成可及性和特异性的 ABPs,以加深我们对健康和疾病中酶的理解。α-葡萄糖苷酶参与多种生理过程,包括胃肠道中的碳水化合物吸收、内质网(ER)中的糖蛋白加工以及溶酶体内糖原分解。溶酶体酸性α-葡萄糖苷酶(GAA)的遗传性缺乏导致溶酶体糖原贮积症,即庞贝病。在这里,我们设计了一种用于荧光和生物素修饰的 ABPs 的合成途径,用于体外和原位监测α-葡萄糖苷酶。我们通过质谱、凝胶电泳和 X 射线晶体学证明,α-吡喃葡萄糖构象环磷啶氮唑标记了不同的保留α-葡萄糖苷酶,包括 GAA 和 ERα-葡萄糖苷酶 II,并且这种标记可以通过 pH 进行调节。我们在庞贝病患者细胞中展示了一种直接的诊断应用,并讨论了探针如何进一步用于各种应用。