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Decoding the Interactions Regulating the Active State Mechanics of Eukaryotic Protein Kinases

机译:解码调节真核蛋白激酶活性状态力学的相互作用。

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摘要

Eukaryotic protein kinases regulate most cellular functions by phosphorylating targeted protein substrates through a highly conserved catalytic core. In the active state, the catalytic core oscillates between open, intermediate, and closed conformations. Currently, the intramolecular interactions that regulate the active state mechanics are not well understood. Here, using cAMP-dependent protein kinase as a representative model coupled with biochemical, biophysical, and computational techniques, we define a set of highly conserved electrostatic and hydrophobic interactions working harmoniously to regulate these mechanics. These include the previously identified salt bridge between a lysine from the β3-strand and a glutamate from the αC-helix as well as an electrostatic interaction between the phosphorylated activation loop and αC-helix and an ensemble of hydrophobic residues of the Regulatory spine and Shell. Moreover, for over three decades it was thought that the highly conserved β3-lysine was essential for phosphoryl transfer, but our findings show that the β3-lysine is not required for phosphoryl transfer but is essential for the active state mechanics.
机译:真核蛋白激酶通过高度保守的催化核心使目标蛋白底物磷酸化,从而调节大多数细胞功能。在活性状态下,催化核在开,中和闭构型之间振荡。当前,尚不清楚调节活性状态力学的分子内相互作用。在这里,使用cAMP依赖性蛋白激酶作为代表模型,结合生化,生物物理和计算技术,我们定义了一组高度保守的静电和疏水相互作用,以协调地调节这些机制。这些包括先前确定的来自β3链的赖氨酸和来自αC螺旋的谷氨酸之间的盐桥,以及磷酸化的活化环和αC螺旋之间的静电相互作用以及调节脊柱和外壳的疏水残基的集合。此外,在过去的三十多年中,人们一直认为高度保守的β3-赖氨酸对于磷酰基转移是必不可少的,但是我们的发现表明,β3-赖氨酸不是磷酰基转移所必需的,而是对活性态力学必不可少的。

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