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Unique Structure and Dynamics of the EphA5 Ligand Binding Domain Mediate Its Binding Specificity as Revealed by X-ray Crystallography NMR and MD Simulations

机译:EphA5配体结合域的独特结构和动力学介导其结合特异性如X射线晶体学NMR和MD模拟所揭示

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摘要

The 16 EphA and EphB receptors represent the largest family of receptor tyrosine kinases, and their interactions with 9 ephrin-A and ephrin-B ligands initiate bidirectional signals controlling many physiological and pathological processes. Most interactions occur between receptor and ephrins of the same class, and only EphA4 can bind all A and B ephrins. To understand the structural and dynamic principles that enable Eph receptors to utilize the same jellyroll β-sandwich fold to bind ephrins, the VAPB-MSP domain, peptides and small molecules, we have used crystallography, NMR and molecular dynamics (MD) simulations to determine the first structure and dynamics of the EphA5 ligand-binding domain (LBD), which only binds ephrin-A ligands. Unexpectedly, despite being unbound, the high affinity ephrin-binding pocket of EphA5 resembles that of other Eph receptors bound to ephrins, with a helical conformation over the J–K loop and an open pocket. The openness of the pocket is further supported by NMR hydrogen/deuterium exchange data and MD simulations. Additionally, the EphA5 LBD undergoes significant picosecond-nanosecond conformational exchanges over the loops, as revealed by NMR and MD simulations, but lacks global conformational exchanges on the microsecond-millisecond time scale. This is markedly different from the EphA4 LBD, which shares 74% sequence identity and 87% homology. Consequently, the unbound EphA5 LBD appears to comprise an ensemble of open conformations that have only small variations over the loops and appear ready to bind ephrin-A ligands. These findings show how two proteins with high sequence homology and structural similarity are still able to achieve distinctive binding specificities through different dynamics, which may represent a general mechanism whereby the same protein fold can serve for different functions. Our findings also suggest that a promising strategy to design agonists/antagonists with high affinity and selectivity might be to target specific dynamic states of the Eph receptor LBDs.
机译:16种EphA和EphB受体代表了最大的受体酪氨酸激酶家族,它们与9种ephrin-A和ephrin-B配体的相互作用引发了双向信号,控制着许多生理和病理过程。大多数相互作用发生在同一类别的受体和ephrin之间,只有EphA4可以结合所有A和B ephrin。为了了解使Eph受体能够利用相同的果冻β夹心折叠来结合ephrin,VAPB-MSP域,肽和小分子的结构和动力学原理,我们使用了晶体学,NMR和分子动力学(MD)模拟来确定仅结合ephrin-A配体的EphA5配体结合域(LBD)的第一个结构和动力学。出乎意料的是,尽管没有结合,EphA5的高亲和力结合ephrin的口袋却与结合到ephrin的其他Eph受体的口袋相似,在J-K环上有一个螺旋构象,并有一个开放的口袋。 NMR氢/氘交换数据和MD模拟进一步支持了口袋的开放性。此外,如NMR和MD模拟所揭示的那样,EphA5 LBD在环上经历了显着的皮秒-纳秒构象交换,但在微秒-毫秒的时间尺度上缺乏全局构象交换。这明显不同于EphA4 LBD,后者具有74%的序列同一性和87%的同源性。因此,未结合的EphA5 LBD似乎包含开放构象的集合,这些开放构象在环上仅具有很小的变化,并且看起来很容易结合ephrin-A配体。这些发现表明,具有高序列同源性和结构相似性的两种蛋白质如何仍能够通过不同的动力学来实现独特的结合特异性,这可能代表了一种通用机制,其中相同的蛋白质折叠可以起到不同的作用。我们的发现还表明,设计具有高亲和力和选择性的激动剂/拮抗剂的一种有前途的策略可能是针对Eph受体LBD的特定动态状态。

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