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Structural Consequences of Multisite Phosphorylation in the BAK1 Kinase Domain

机译:BAK1激酶结构域多立体磷酸化的结构后果

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摘要

Multisite phosphorylation is an important mechanism of post-translational control of protein kinases. The effects of combinations of possible phosphorylation states on protein kinase activity are difficult to study experimentally because of challenges in isolating a particular phosphorylation state; surprising little effort on this topic has been expended in computational studies. To understand the effects of multisite phosphorylation on the plant protein kinase brassinosteroid insensitive 1-associated kinase 1 (BAK1) conformational ensemble, we performed Gaussian accelerated molecular dynamics simulations on eight BAK1 mod-forms involving phosphorylation of the four activation-loop threonine residues and binding of ATP-Mg2+. We find that unphosphorylated BAK1 transitions into an inactive conformation with a “cracked” activation loop and with the αC helix swung away from the active site. T450 phosphorylation can prevent the activation loop from cracking and keep the αC helix in an active-like conformation, whereas phosphorylation of T455 only slightly stabilizes the activation loop. There is a general trend of reduced flexibility in interlobe motion with increased phosphorylation. Interestingly, the αC helix is destabilized when the activation loop is fully phosphorylated but is again stabilized with ATP-Mg2+ bound. Our results provide insight into the mechanism of phosphorylation-controlled BAK1 activation while at the same time represent the first, to our knowledge, comprehensive, comparative study of the effects of combinatorial phosphorylation states on protein kinase conformational dynamics.
机译:多路磷酸化是蛋白激酶后翻译控制的重要机制。可能磷酸化状态对蛋白激酶活性的组合的影响是由于分离特定磷酸化状态的挑战,难以在实验上进行实验研究;对这一主题的令人惊讶的努力已经消耗计算研究。要了解多路磷酸化对植物蛋白激酶芸苔类固醇不敏感的1相关激酶1(Bak1)构象集成的影响,我们对八个Bak1 Mod-型进行了高斯加速的分子动力学模拟,涉及四个活化环苏氨酸残基磷酸化和结合的磷酸化ATP-MG2 +。我们发现不磷酸化的BAK1与“破裂”激活环路和αC螺旋从活性位点移开的无效构象转变为无效构象。 T450磷酸化可以防止激活回路裂化并保持αC螺旋在有效的构象中,而T455的磷酸化仅略微稳定活化环。具有增加的磷酸化的间隙运动中具有降低灵活性的一般趋势。有趣的是,当活化回路完全磷酸化但再次用ATP-MG2 +结合稳定时,αC螺旋也不稳定。我们的结果提供了对磷酸化控制的BAK1激活机制的洞察力,同时代表我们的知识,综合,对比研究组合磷酸化状态对蛋白激酶构象动态的影响。

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