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Macrocycle peptides delineate locked-open inhibition mechanism for microorganism phosphoglycerate mutases

机译:大环肽描述了微生物磷酸甘油酸突变酶的开锁抑制机制

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摘要

Glycolytic interconversion of phosphoglycerate isomers is catalysed in numerous pathogenic microorganisms by a cofactor-independent mutase (iPGM) structurally distinct from the mammalian cofactor-dependent (dPGM) isozyme. The iPGM active site dynamically assembles through substrate-triggered movement of phosphatase and transferase domains creating a solvent inaccessible cavity. Here we identify alternate ligand binding regions using nematode iPGM to select and enrich lariat-like ligands from an mRNA-display macrocyclic peptide library containing >1012 members. Functional analysis of the ligands, named ipglycermides, demonstrates sub-nanomolar inhibition of iPGM with complete selectivity over dPGM. The crystal structure of an iPGM macrocyclic peptide complex illuminated an allosteric, locked-open inhibition mechanism placing the cyclic peptide at the bi-domain interface. This binding mode aligns the pendant lariat cysteine thiolate for coordination with the iPGM transition metal ion cluster. The extended charged, hydrophilic binding surface interaction rationalizes the persistent challenges these enzymes have presented to small-molecule screening efforts highlighting the important roles of macrocyclic peptides in expanding chemical diversity for ligand discovery.
机译:磷酸甘油酸酯异构体的糖酵解互变在许多致病微生物中被结构上不同于哺乳动物辅因子依赖性(dPGM)同工酶的辅因子依赖性突变酶(iPGM)催化。 iPGM活性位点通过磷酸酶和转移酶结构域的底物触发运动而动态组装,从而形成了溶剂无法进入的空腔。在这里,我们使用线虫iPGM从包含> 10 12 个成员的mRNA展示大环肽库中选择并富集套索状配体,从而鉴定出其他配体结合区域。对配体称为甘油三酸酯的功能分析表明,iPGM的亚纳摩尔抑制作用对dPGM具有完全选择性。 iPGM大环肽复合物的晶体结构阐明了一种变构,锁定开放的抑制机制,将环肽置于双结构域界面。该结合模式使悬垂的套索状半胱氨酸硫醇盐与iPGM过渡金属离子簇对齐。扩展的带电亲水结合表面相互作用使这些酶对小分子筛选工作提出的持续挑战合理化,从而突出了大环肽在扩大化学多样性以寻找配体方面的重要作用。

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