UPMC Univ Paris 06, Institut Parisien de Chimie Moléculaire, UMR CNRS 7201, Equipe glycochimie, C181, 4 place Jussieu, 75005 Paris, France.
J Am Chem Soc. 2009 Apr 22;131(15):5390-2. doi: 10.1021/ja809776r.
Here we report the synthesis of a series of polyhydroxylated 3- and 5-acetamido azepanes and detail the molecular basis of their inhibition of family 84 glycoside hydrolases. These family 84 enzymes include human O-GlcNAcase, an enzyme involved in post-translational processing of intracellular proteins modified by O-linked beta-N-acetylglucosamine residues. Detailed structural analysis of the binding of these azepanes to BtGH84, a bacterial homologue of O-GlcNAcase, highlights their conformational flexibility. Molecular mechanics and molecular dynamics calculations reveal that binding to the enzyme involves significant conformational distortion of these inhibitors from their preferred solution conformations. The binding of these azepanes provides structural insight into substrate distortion that likely occurs along the reaction coordinate followed by O-GlcNAcase during glycoside hydrolysis. This class of inhibitors may prove to be useful probes for evaluating the conformational itineraries of glycosidases and aid the development of more potent and specific glycosidase inhibitors.
在这里,我们报告了一系列多羟基化的 3- 和 5-乙酰氨基氮杂环庚烷的合成,并详细介绍了它们抑制家族 84 糖苷水解酶的分子基础。这些家族 84 酶包括人类 O-GlcNAcase,一种参与细胞内蛋白质通过 O-连接β-N-乙酰氨基葡萄糖残基进行翻译后加工的酶。对这些氮杂环庚烷与 BtGH84(O-GlcNAcase 的细菌同源物)结合的详细结构分析突出了它们的构象灵活性。分子力学和分子动力学计算表明,与酶的结合涉及这些抑制剂从其优选的溶液构象发生显著的构象扭曲。这些氮杂环庚烷的结合提供了结构洞察力,了解在糖苷水解过程中,沿着反应坐标可能发生的底物扭曲,随后是 O-GlcNAcase。这类抑制剂可能被证明是评估糖苷酶构象轨迹的有用探针,并有助于开发更有效和更特异的糖苷酶抑制剂。