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首页> 外文期刊>Bioscience Reports >The kinetic properties of a human PPIP5K reveal that its kinase activities are protected against the consequences of a deteriorating cellular bioenergetic environment
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The kinetic properties of a human PPIP5K reveal that its kinase activities are protected against the consequences of a deteriorating cellular bioenergetic environment

机译:人类PPIP5K的动力学特性表明,其激酶活性受到保护,不会受到细胞生物能环境恶化的影响

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摘要

We obtained detailed kinetic characteristics–stoichiometry, reaction rates, substrate affinities and equilibrium conditions–of human PPIP5K2 (diphosphoinositol pentakisphosphate kinase 2). This enzyme synthesizes ‘high-energy’ PP-InsPs (diphosphoinositol polyphosphates) by metabolizing InsP6 (inositol hexakisphosphate) and 5-InsP7 (5-diphosphoinositol 1,2,3,4,6-pentakisphosphate) to 1-InsP7 (1-diphosphoinositol 2,3,4,5,6-pentakisphosphate) and InsP8 (1,5-bis-diphosphoinositol 2,3,4,6-tetrakisphosphate), respectively. These data increase our insight into the PPIP5K2 reaction mechanism and clarify the interface between PPIP5K catalytic activities and cellular bioenergetic status. For example, stochiometric analysis uncovered non-productive, substrate-stimulated ATPase activity (thus, approximately 2 and 1.2 ATP molecules are utilized to synthesize each molecule of 1-InsP7 and InsP8, respectively). Impaired ATPase activity of a PPIP5K2-K248A mutant increased atomic-level insight into the enzyme's reaction mechanism. We found PPIP5K2 to be fully reversible as an ATP-synthase in?vitro, but our new data contradict previous perceptions that significant ‘reversibility’ occurs in?vivo. PPIP5K2 was insensitive to physiological changes in either [AMP] or [ATP]/[ADP] ratios. Those data, together with adenine nucleotide kinetics (ATP Km=20–40?μM), reveal how insulated PPIP5K2 is from cellular bioenergetic challenges. Finally, the specificity constants for PPIP5K2 revise upwards by one-to-two orders of magnitude the inherent catalytic activities of this enzyme, and we show its equilibrium point favours 80–90% depletion of InsP6/5-InsP7.
机译:我们获得了人PPIP5K2(二磷酸肌醇五磷酸磷酸激酶2)的详细动力学特征-化学计量,反应速率,底物亲和力和平衡条件。该酶通过将InsP6(肌醇六磷酸)和5-InsP7(5-二磷酸肌醇1,2,3,4,6-戊五磷酸)代谢为1-InsP7(1-二磷酸肌醇)来合成“高能” PP-InsPs(二磷酸肌醇多磷酸盐)。 2,3,4,5,6-五磷酸)和InsP8(1,5-双-二磷酸肌醇2,3,4,6-四磷酸)。这些数据增加了我们对PPIP5K2反应机理的认识,并阐明了PPIP5K催化活性与细胞生物能状态之间的接口。例如,化学计量分析发现了非生产性,底物刺激的ATPase活性(因此,分别利用大约2个和1.2个ATP分子来合成1-InsP7和InsP8的每个分子)。 PPIP5K2-K248A突变体的ATPase活性受损,增加了对该酶反应机理的原子层次了解。我们发现PPIP5K2作为体外的ATP合酶是完全可逆的,但是我们的新数据与以前认为体内显着的“可逆性”发生的看法相矛盾。 PPIP5K2对[AMP]或[ATP] / [ADP]比中的生理变化不敏感。这些数据,连同腺嘌呤核苷酸动力学(ATP Km = 20–40?μM),揭示了PPIP5K2与细胞生物能挑战之间的隔绝程度。最后,PPIP5K2的特异性常数将这种酶的固有催化活性上调1-2个数量级,并且我们发现其平衡点有利于消耗80-90%的InsP6 / 5-InsP7。

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