Molecular basis for differential recognition of an allosteric inhibitor by receptor tyrosine kinases.

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC ACS Applied Electronic Materials Pub Date : 2024-08-01 Epub Date: 2024-03-20 DOI:10.1002/prot.26685
Jyoti Verma, Harish Vashisth
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Abstract

Understanding kinase-inhibitor selectivity continues to be a major objective in kinase drug discovery. We probe the molecular basis of selectivity of an allosteric inhibitor (MSC1609119A-1) of the insulin-like growth factor-I receptor kinase (IGF1RK), which has been shown to be ineffective for the homologous insulin receptor kinase (IRK). Specifically, we investigated the structural and energetic basis of the allosteric binding of this inhibitor to each kinase by combining molecular modeling, molecular dynamics (MD) simulations, and thermodynamic calculations. We predict the inhibitor conformation in the binding pocket of IRK and highlight that the charged residues in the histidine-arginine-aspartic acid (HRD) and aspartic acid-phenylalanine-glycine (DFG) motifs and the nonpolar residues in the binding pocket govern inhibitor interactions in the allosteric pocket of each kinase. We suggest that the conformational changes in the IGF1RK residues M1054 and M1079, movement of the ⍺C-helix, and the conformational stabilization of the DFG motif favor the selectivity of the inhibitor toward IGF1RK. Our thermodynamic calculations reveal that the observed selectivity can be rationalized through differences observed in the electrostatic interaction energy of the inhibitor in each inhibitor/kinase complex and the hydrogen bonding interactions of the inhibitor with the residue V1063 in IGF1RK that are not attained with the corresponding residue V1060 in IRK. Overall, our study provides a rationale for the molecular basis of recognition of this allosteric inhibitor by IGF1RK and IRK, which is potentially useful in developing novel inhibitors with improved affinity and selectivity.

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受体酪氨酸激酶对异位抑制剂的不同识别的分子基础。
了解激酶抑制剂的选择性仍然是激酶药物发现的一个主要目标。我们探究了胰岛素样生长因子-I受体激酶(IGF1RK)异位抑制剂(MSC1609119A-1)选择性的分子基础,该抑制剂对同源的胰岛素受体激酶(IRK)无效。具体来说,我们结合分子建模、分子动力学(MD)模拟和热力学计算,研究了这种抑制剂与每种激酶异构结合的结构和能量基础。我们预测了抑制剂在 IRK 结合口袋中的构象,并强调组氨酸-精氨酸-天冬氨酸(HRD)和天冬氨酸-苯丙氨酸-甘氨酸(DFG)基团中的带电残基以及结合口袋中的非极性残基支配着抑制剂在每种激酶的异构口袋中的相互作用。我们认为,IGF1RK残基M1054和M1079的构象变化、C螺旋的移动以及DFG基团的构象稳定有利于抑制剂对IGF1RK的选择性。我们的热力学计算显示,在每个抑制剂/激酶复合物中观察到的抑制剂静电相互作用能和抑制剂与 IGF1RK 中残基 V1063 的氢键相互作用存在差异,而 IRK 中的相应残基 V1060 则没有这种差异,因此观察到的选择性是合理的。总之,我们的研究为 IGF1RK 和 IRK 识别这种异构抑制剂的分子基础提供了理论依据,这可能有助于开发亲和性和选择性更强的新型抑制剂。
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来源期刊
CiteScore
7.20
自引率
4.30%
发文量
567
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