Biomolecular Interaction Research Group, Institute of Organic Chemistry, Research Centre for Natural Sciences, Budapest, Hungary.
Doctoral School of Biology, Eötvös Loránd University, Budapest, Hungary.
Nat Commun. 2024 Oct 4;15(1):8607. doi: 10.1038/s41467-024-52574-1.
For mitogen-activated protein kinases (MAPKs) a shallow surface-distinct from the substrate binding pocket-called the D(ocking)-groove governs partner protein binding. Screening of broad range of Michael acceptor compounds identified a double-activated, sterically crowded cyclohexenone moiety as a promising scaffold. We show that compounds bearing this structurally complex chiral warhead are able to target the conserved MAPK D-groove cysteine via reversible covalent modification and interfere with the protein-protein interactions of MAPKs. The electronic and steric properties of the Michael acceptor can be tailored via different substitution patterns. The inversion of the chiral center of the warhead can reroute chemical bond formation with the targeted cysteine towards the neighboring, but less nucleophilic histidine. Compounds bind to the shallow MAPK D-groove with low micromolar affinity in vitro and perturb MAPK signaling networks in the cell. This class of chiral, cyclic and enhanced 3D shaped Michael acceptor scaffolds offers an alternative to conventional ATP-competitive drugs modulating MAPK signaling pathways.
对于丝裂原活化蛋白激酶(MAPK),一个浅表面(与底物结合口袋不同)被称为 D(ocking)-groove,控制着伴侣蛋白的结合。对广泛的迈克尔受体化合物进行筛选,确定了一个双重激活的、空间拥挤的环己烯酮部分作为有前途的支架。我们表明,带有这种结构复杂的手性弹头的化合物能够通过可逆的共价修饰靶向保守的 MAPK D-groove 半胱氨酸,并干扰 MAPKs 的蛋白-蛋白相互作用。迈克尔受体的电子和空间性质可以通过不同的取代模式进行调整。通过在手性中心的反转,可以将与靶半胱氨酸的化学键形成重新引导到相邻但亲核性较弱的组氨酸。化合物在体外以低微摩尔亲和力结合到浅 MAPK D-groove,并在细胞中扰乱 MAPK 信号网络。这类手性、环状和增强的 3D 形状的迈克尔受体支架为调节 MAPK 信号通路的传统 ATP 竞争性药物提供了替代方案。
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