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Investigating Phosphorylation-Induced Conformational Changes in WNK1 Kinase by Molecular Dynamics Simulations

机译:通过分子动力学模拟研究WNK1激酶的磷酸化诱导的构象变化

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The With-No-Lysine (WNK) kinase is considered to be a master regulator for various cation-chloride cotransporters involved in maintaining cell-volume and ion homeostasis. Here, we have investigated the phosphorylation-induced structural dynamics of the WNK1 kinase bound to an inhibitor via atomistic molecular dynamics simulations. Results from our simulations show that the phosphorylation at Ser382 could stabilize the otherwise flexible activation loop (A-loop). The intrahelix salt-bridge formed between Arg264 and Glu268 in the unphosphorylated system is disengaged after the phosphorylation, and Glu268 reorients itself and forms a stable salt-bridge with Arg348. The dynamic cross-correlation analysis shows that phosphorylation diminishes anticorrelated motions and increases correlated motions between different domains. Structural network analysis reveals that the phosphorylation causes structural rearrangements and shortens the communication path between the αC-helix and catalytic loop, making the binding pocket more suitable for accommodating the ligand. Overall, we have characterized the structural changes in the WNK kinase because of phosphorylation in the A-loop, which might help in designing rational drugs.
机译:无赖氨酸(WNK)激酶被认为是涉及维持细胞体积和离子稳态的各种阳离子-氯化物共转运蛋白的主要调节剂。在这里,我们已经通过原子分子动力学模拟研究了绑定到抑制剂的WNK1激酶的磷酸化诱导的结构动力学。我们的模拟结果表明,Ser382的磷酸化可以稳定原本灵活的激活环(A环)。磷酸化后,在未磷酸化的系统中,在Arg264和Glu268之间形成的螺旋内盐桥被脱开,Glu268自身重新定向并与Arg348形成稳定的盐桥。动态互相关分析表明,磷酸化可减少反相关运动,并增加不同域之间的相关运动。结构网络分析表明,磷酸化会引起结构重排,并缩短了αC-螺旋和催化环之间的连通路径,从而使结合口袋更适合于容纳配体。总体而言,由于A环中的磷酸化,我们已经表征了WNK激酶的结构变化,这可能有助于设计合理的药物。

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