Qin Haina, Shi Jiahai, Noberini Roberta, Pasquale Elena B, Song Jianxing
Department of Biological Sciences, Faculty of Science, National University of Singapore, Singapore 11926.
J Biol Chem. 2008 Oct 24;283(43):29473-84. doi: 10.1074/jbc.M804114200. Epub 2008 Aug 14.
The Eph receptor tyrosine kinases regulate a variety of physiological and pathological processes not only during development but also in adult organs, and therefore they represent a promising class of drug targets. The EphA4 receptor plays important roles in the inhibition of the regeneration of injured axons, synaptic plasticity, platelet aggregation, and likely in certain types of cancer. Here we report the first crystal structure of the EphA4 ligand-binding domain, which adopts the same jellyroll beta-sandwich architecture as shown previously for EphB2 and EphB4. The similarity with EphB receptors is high in the core beta-stranded regions, whereas large variations exist in the loops, particularly the D-E and J-K loops, which form the high affinity ephrin binding channel. We also used isothermal titration calorimetry, NMR spectroscopy, and computational docking to characterize the binding to EphA4 of two small molecules, 4- and 5-(2,5 dimethyl-pyrrol-1-yl)-2-hydroxybenzoic acid which antagonize ephrin-induced effects in EphA4-expressing cells. We show that the two molecules bind to the EphA4 ligand-binding domain with K(d) values of 20.4 and 26.4 microm, respectively. NMR heteronuclear single quantum coherence titrations revealed that upon binding, both molecules significantly perturb EphA4 residues Ile(31)-Met(32) in the D-E loop, Gln(43) in the E beta-strand, and Ile(131)-Gly(132) in the J-K loop. Molecular docking shows that they can occupy a cavity in the high affinity ephrin binding channel of EphA4 in a similar manner, by interacting mainly with the EphA4 residues in the E strand and D-E and J-K loops. However, many of the interactions observed in Eph receptor-ephrin complexes are absent, which is consistent with the small size of the two molecules and may account for their relatively weak binding affinity. Thus, our studies provide the first published structure of the ligand-binding domain of an EphA receptor of the A subclass. Furthermore, the results demonstrate that the high affinity ephrin binding channel of the Eph receptors is amenable to targeting with small molecule antagonists and suggest avenues for further optimization.
Eph受体酪氨酸激酶不仅在发育过程中,而且在成体器官中都调节多种生理和病理过程,因此它们是一类很有前景的药物靶点。EphA4受体在抑制受损轴突再生、突触可塑性、血小板聚集以及可能在某些类型的癌症中发挥重要作用。在此我们报道了EphA4配体结合结构域的首个晶体结构,其采用了与先前报道的EphB2和EphB4相同的果冻卷β-折叠三明治结构。与EphB受体在核心β-链区域的相似性很高,而在环区,特别是形成高亲和力 Ephrin结合通道的D-E环和J-K环存在很大差异。我们还使用等温滴定量热法、核磁共振光谱法和计算对接来表征两种小分子4-和5-(2,5-二甲基-吡咯-1-基)-2-羟基苯甲酸与EphA4的结合,这两种小分子可拮抗Ephrin在表达EphA4的细胞中诱导的效应。我们表明这两种分子与EphA4配体结合结构域的结合解离常数(K(d))值分别为20.4和26.4微摩尔。核磁共振异核单量子相干滴定显示,结合后,两种分子均显著干扰EphA4在D-E环中的Ile(31)-Met(32)残基、Eβ-链中的Gln(43)残基以及J-K环中的Ile(131)-Gly(132)残基。分子对接表明它们可以以类似的方式占据EphA4高亲和力Ephrin结合通道中的一个腔,主要通过与E链以及D-E环和J-K环中的EphA4残基相互作用。然而,在Eph受体-Ephrin复合物中观察到的许多相互作用并不存在,这与这两种分子的小尺寸一致,可能解释了它们相对较弱的结合亲和力。因此,我们的研究提供了首个已发表的A亚类EphA受体配体结合结构域的结构。此外,结果表明Eph受体的高亲和力Ephrin结合通道适合用小分子拮抗剂进行靶向,并为进一步优化提供了途径。