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利用分子动力学模拟阐明无赖氨酸激酶同工型中变构抑制剂 WNK476 的特异性。

Elucidating specificity of an allosteric inhibitor WNK476 among With-No-Lysine kinase isoforms using molecular dynamic simulations.

机构信息

Department of Biosciences and Biomedical Engineering, Indian Institute of Technology Indore, Indore, India.

出版信息

Chem Biol Drug Des. 2021 Sep;98(3):405-420. doi: 10.1111/cbdd.13863. Epub 2021 Jun 5.

Abstract

Specifically targeting the With-No-Lysine (WNK1) kinase, which is implicated in hypertension, renders a significant challenge in discovering competitive inhibitors due to the highly conserved ATP-binding pocket. However, an allosteric inhibitor may impart high specificity against the WNK kinase isoforms since it targets the less conserved site and can provide greater efficacy even under high physiological ATP concentration. In the current study, we have investigated the structural and energetic basis of the specificity of the allosteric inhibitor WNK476 against WNK kinase isoforms by combining molecular dynamics simulations and free energy calculations using molecular mechanics Poisson-Boltzmann surface area. Our study reveals that the conformational stabilization of αC-helix near the allosteric binding site, including conformational changes in activation and glycine-rich loop regions, favors the specificity of WNK476 toward WNK1. The MM/PBSA calculations suggest that the non-polar contribution from hydrophobic residues and polar solvation energy influences WNK/WNK476 complexation. Despite more favorable electrostatic and van der Waals interactions in WNK2/WNK476, WNK476 is more potent against WNK1 due to the lower contribution of disfavoring components-polar solvation and entropy. Further, we have identified that the hydrophobic residues of DLG, αC-helix, β , and β regions, and H-bond network near the β strand play a critical role in the specificity of WNK476 against WNK1. Finally, our study reveals that residues Leu , Val , Phe , and Leu of WNK1 actively contribute to the overall hydrophobic interactions for WNK1/WNK476. Overall, our study might help in the rational design of novel allosteric inhibitors against hypertension.

摘要

特别针对与高血压有关的无赖氨酸(WNK1)激酶,由于高度保守的 ATP 结合口袋,发现竞争性抑制剂具有很大的挑战性。然而,变构抑制剂可能针对 WNK 激酶同工型具有高特异性,因为它针对不太保守的位点,并且即使在高生理 ATP 浓度下也能提供更高的疗效。在本研究中,我们通过结合分子动力学模拟和使用分子力学泊松-玻尔兹曼表面积的自由能计算,研究了变构抑制剂 WNK476 对 WNK 激酶同工型特异性的结构和能量基础。我们的研究表明,变构结合位点附近的 αC-螺旋的构象稳定性,包括激活和甘氨酸丰富环区域的构象变化,有利于 WNK476 对 WNK1 的特异性。MM/PBSA 计算表明,非极性疏水残基和极性溶剂化能的贡献影响 WNK/WNK476 络合。尽管 WNK2/WNK476 中存在更有利的静电和范德华相互作用,但由于不利成分(极性溶剂化和熵)的贡献较低,WNK476 对 WNK1 的抑制作用更强。此外,我们已经确定 DLG、αC-螺旋、β和β区域的疏水性残基以及β 链附近的氢键网络在 WNK476 对 WNK1 的特异性中起着关键作用。最后,我们的研究表明,WNK1 的残基亮氨酸、缬氨酸、苯丙氨酸和亮氨酸积极参与 WNK1/WNK476 的整体疏水相互作用。总的来说,我们的研究可能有助于针对高血压的新型变构抑制剂的合理设计。

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