首页> 美国卫生研究院文献>Acta Crystallographica Section D: Biological Crystallography >Low- and room-temperature X-ray structures of protein kinase A ternary complexes shed new light on its activity
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Low- and room-temperature X-ray structures of protein kinase A ternary complexes shed new light on its activity

机译:蛋白激酶A三元复合物的低温和室温X射线结构为其活性提供了新的思路

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摘要

Post-translational protein phosphorylation by protein kinase A (PKA) is a ubiquitous signalling mechanism which regulates many cellular processes. A low-temperature X-ray structure of the ternary complex of the PKA catalytic subunit (PKAc) with ATP and a 20-residue peptidic inhibitor (IP20) at the physiological Mg2+ concentration of ∼0.5 mM (LT PKA–MgATP–IP20) revealed a single metal ion in the active site. The lack of a second metal in LT PKA–MgATP–IP20 renders the β- and γ-phosphoryl groups of ATP very flexible, with high thermal B factors. Thus, the second metal is crucial for tight positioning of the terminal phosphoryl group for transfer to a substrate, as demonstrated by comparison of the former structure with that of the LT PKA–Mg2ATP–IP20 complex obtained at high Mg2+ concentration. In addition to its kinase activity, PKAc is also able to slowly catalyze the hydrolysis of ATP using a water molecule as a substrate. It was found that ATP can be readily and completely hydrolyzed to ADP and a free phosphate ion in the crystals of the ternary complex PKA–Mg2ATP–IP20 by X-ray irradiation at room temperature. The cleavage of ATP may be aided by X-ray-generated free hydroxyl radicals, a very reactive chemical species, which move rapidly through the crystal at room temperature. The phosphate anion is clearly visible in the electron-density maps; it remains in the active site but slides about 2 Å from its position in ATP towards Ala21 of IP20, which mimics the phosphorylation site. The phosphate thus pushes the peptidic inhibitor away from the product ADP, while resulting in dramatic conformational changes of the terminal residues 24 and 25 of IP20. X-ray structures of PKAc in complex with the non­hydrolysable ATP analogue AMP-PNP at both room and low temperature demonstrated no temperature effects on the conformation and position of IP20.
机译:蛋白激酶A(PKA)的翻译后蛋白磷酸化是一种普遍存在的信号传导机制,可调节许多细胞过程。在生理Mg 2 + 浓度为〜0.5 mM时,PKA催化亚基(PKAc)与ATP和20个残基的肽类抑制剂(IP20)的三元复合物的低温X射线结构。 (LT PKA–MgATP–IP20)在活性位点发现了一个金属离子。 LT PKA–MgATP–IP20中缺少第二种金属,使得ATP的β-和γ-磷酰基非常灵活,具有较高的热B因子。因此,第二种金属对于将末端磷酸基团紧密定位以转移至基质至关重要,正如前者的结构与在高Mg 2+ <下获得的LT PKA–Mg2ATP–IP20复合物的结构比较所证明的那样/ sup>浓度。除其激酶活性外,PKAc还能够使用水分子作为底物来缓慢催化ATP的水解。发现在室温下通过X射线照射,ATP可以很容易地完全水解为ADP和三元复合物PKA–Mg2ATP–IP20晶体中的游离磷酸根离子。 ATP的裂解可通过X射线生成的自由基羟基自由基(一种非常活泼的化学物种)来辅助,该自由基自由基在室温下快速移动通过晶体。磷酸根阴离子在电子密度图中清晰可见。它保留在活性位点,但从其在ATP中的位置向IP20的Ala21滑动约2Å,该位点模仿了磷酸化位点。磷酸盐因此将肽类抑制剂推离产物ADP,同时导致IP20的末端残基24和25的显着构象变化。 PKAc与不可水解的ATP类似物AMP-PNP的X射线结构在室温和低温下均未显示温度对IP20的构象和位置有影响。

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