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Conformational Dynamics of a Regulator of G-protein Signaling Protein Reveals a Mechanism of Allosteric Inhibition by a Small Molecule

机译:G蛋白信号蛋白调节剂的构象动力学揭示了一个小分子的变构抑制的机制。

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摘要

Regulators of G protein signaling (RGS) proteins are key players in regulating signaling via G protein-coupled receptors. RGS proteins directly bind to the Gα-subunits of activated heterotrimeric G-proteins, and accelerate the rate of GTP hydrolysis, thereby rapidly deactivating G-proteins. Using atomistic simulations and NMR spectroscopy, we have studied in molecular detail the mechanism of action of CCG-50014, a potent small molecule inhibitor of RGS4 which covalently binds to cysteine residues on RGS4. We apply temperature-accelerated molecular dynamics (TAMD) to carry out enhanced conformational sampling of apo RGS4 structures, and consistently find that the α5-α6 helix pair of RGS4 can spontaneously span open-like conformations, allowing binding of CCG-50014 to the buried side-chain of Cys95. Both NMR experiments and MD simulations reveal chemical shift perturbations in residues in the vicinity of inhibitor binding site as well as in the RGS4-Gα binding interface. Consistent with a loss of G-protein binding, GAP activity, and allosteric mechanism of action of CCG-50014, our simulations of the RGS4-Gα complex in the presence of inhibitor suggest a relatively unstable protein-protein interaction. These results have potential implications for understanding how the conformational dynamics among RGS proteins may play a key role in the sensitivity of inhibitors.
机译:G蛋白信号转导(RGS)蛋白的调节剂是通过G蛋白偶联受体调节信号转导的关键参与者。 RGS蛋白直接结合到活化的异源三聚G蛋白的Gα亚基上,并加速GTP水解速度,从而使G蛋白迅速失活。使用原子模拟和NMR光谱,我们在分子上详细研究了CCG-50014的作用机理,CCG-50014是一种有效的RGS4小分子抑制剂,与RGS4上的半胱氨酸残基共价结合。我们应用温度加速分子动力学(TAMD)对载脂蛋白RGS4结构进行增强的构象采样,并不断发现RGS4的α5-α6螺旋对可以自发跨越开放样构象,从而使CCG-50014与埋藏的分子结合Cys95的侧链。 NMR实验和MD模拟都揭示了抑制剂结合位点附近以及RGS4-Gα结合界面附近残基的化学位移扰动。与CCG-50014的G蛋白结合丧失,GAP活性和变构作用机制一致,我们在存在抑制剂的情况下对RGS4-Gα复合物的模拟表明蛋白与蛋白质之间的相互作用相对不稳定。这些结果可能有助于理解RGS蛋白之间的构象动力学如何在抑制剂的敏感性中发挥关键作用。

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