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Mechanism of Selective Enzyme Inhibition through Uncompetitive Regulation of an Allosteric Agonist

机译:通过竞争性调节变构激动剂选择性酶抑制机制。

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摘要

Classical uncompetitive inhibitors are potent pharmacological modulators of enzyme function. Since they selectively target enzyme–substrate complexes (E:S), their inhibitory potency is amplified by increasing substrate concentrations. Recently, an unconventional uncompetitive inhibitor, called CE3F4R, was discovered for the exchange protein activated by cAMP isoform 1 (EPAC1). Unlike conventional uncompetitive inhibitors, CE3F4R is uncompetitive with respect to an allosteric effector, cAMP, as opposed to the substrate (i.e., CE3F4R targets the E:cAMP rather than the E:S complex). However, the mechanism of CE3F4R as an uncompetitive inhibitor is currently unknown. Here, we elucidate the mechanism of CE3F4R’s action using NMR spectroscopy. Due to limited solubility and line broadening, which pose major challenges for traditional structural determination approaches, we resorted to a combination of protein- and ligand-based NMR experiments to comparatively analyze EPAC mutations, inhibitor analogs, and cyclic nucleotide derivatives that trap EPAC at different stages of activation. We discovered that CE3F4R binds within the EPAC cAMP-binding domain (CBD) at a subdomain interface distinct from the cAMP binding site, acting as a wedge that stabilizes a cAMP-bound mixed-intermediate. The mixed-intermediate includes attributes of both the apo/inactive and cAMP-bound/active states. In particular, the intermediate targeted by CE3F4R traps a CBD’s hinge helix in its inactive conformation, locking EPAC into a closed domain topology that restricts substrate access to the catalytic domain. The proposed mechanism of action also explains the isoform selectivity of CE3F4R in terms of a single EPAC1 versus EPAC2 amino acid difference that destabilizes the active conformation of the hinge helix.
机译:经典的非竞争性抑制剂是酶功能的有效药理调节剂。由于它们选择性地靶向酶-底物复合物(E:S),因此它们的抑制力会随着底物浓度的增加而增强。最近,发现一种非常规的非竞争性抑制剂,称为CE3F4R,用于cAMP同工型1(EPAC1)激活的交换蛋白。与常规的非竞争性抑制剂不同,CE3F4R在别构效应子cAMP方面与底物相反(即CE3F4R靶向E:cAMP而不是E:S配合物)。但是,CE3F4R作为非竞争性抑制剂的机制目前尚不清楚。在这里,我们使用NMR光谱阐明了CE3F4R的作用机理。由于有限的溶解度和谱线展宽,这对传统的结构确定方法构成了重大挑战,因此,我们采用了基于蛋白质和配体的NMR实验的组合,以比较分析EPAC突变,抑制剂类似物和在不同位置捕获EPAC的环状核苷酸衍生物激活阶段。我们发现,CE3F4R在与cAMP结合位点不同的子域界面处的EPAC cAMP结合域(CBD)内结合,充当稳定cAMP结合的混合中间体的楔形。混合中间体包括apo /无效和cAMP结合/有效状态的属性。特别是,CE3F4R靶向的中间体会以其非活性构象捕获CBD的铰链螺旋,从而将EPAC锁定在封闭结构域的拓扑结构中,从而限制了底物接近催化结构域。所提出的作用机理还以单个EPAC1与EPAC2氨基酸差异来解释CE3F4R的同工型选择性,这使铰链螺旋的活性构象不稳定。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2018年第30期|9624-9637|共14页
  • 作者单位

    Department of Biochemistry and Biomedical Sciences and Department of Chemistry and Chemical Biology, McMaster University;

    Department of Biochemistry and Biomedical Sciences and Department of Chemistry and Chemical Biology, McMaster University;

    Université Paris-Sud, Faculté de Pharmacie;

    Inserm;

    Department of Biochemistry and Biomedical Sciences and Department of Chemistry and Chemical Biology, McMaster University;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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